WO2018076756A1 - 智能穿戴设备的穿戴状态检测方法及检测装置、空调器 - Google Patents
智能穿戴设备的穿戴状态检测方法及检测装置、空调器 Download PDFInfo
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- WO2018076756A1 WO2018076756A1 PCT/CN2017/091178 CN2017091178W WO2018076756A1 WO 2018076756 A1 WO2018076756 A1 WO 2018076756A1 CN 2017091178 W CN2017091178 W CN 2017091178W WO 2018076756 A1 WO2018076756 A1 WO 2018076756A1
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- value
- wearable device
- smart wearable
- predetermined value
- temperature
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F11/00—Control or safety arrangements
- F24F11/30—Control or safety arrangements for purposes related to the operation of the system, e.g. for safety or monitoring
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F11/00—Control or safety arrangements
- F24F11/62—Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F2110/00—Control inputs relating to air properties
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F2110/00—Control inputs relating to air properties
- F24F2110/10—Temperature
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F2120/00—Control inputs relating to users or occupants
- F24F2120/10—Occupancy
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F11/00—Control or safety arrangements
- F24F11/62—Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
- F24F11/63—Electronic processing
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F11/00—Control or safety arrangements
- F24F11/62—Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
- F24F11/63—Electronic processing
- F24F11/64—Electronic processing using pre-stored data
Definitions
- the present invention relates to the field of electronic control technologies, and in particular, to a wearable state detecting method, a detecting device, and an air conditioner of a smart wearing device.
- the main object of the present invention is to provide a wearable state detecting method, a detecting device and an air conditioner of a smart wearing device, which are intended to comprehensively judge not only the capacitance detection but also the ambient temperature or skin temperature detected by the smart wearing device. Status so that accurate inspection data can be provided to enhance the user experience.
- the present invention provides a wearable state detecting method for a smart wearable device, comprising the following steps:
- the smart wearable device If the temperature value and the capacitance value satisfy the preset condition within the predetermined number of wearing detections, it is determined that the smart wearable device is in a wearing state.
- the present invention also provides a detecting device, the detecting device comprising:
- An acquiring module configured to obtain a temperature value detected by the smart wearable device and a capacitance value generated by contact between the smart wearable device and the user's skin;
- the determining module is configured to determine that the smart wearable device is in a wearing state if the temperature value and the capacitance value satisfy a preset condition within a predetermined number of wearing detections.
- the present invention also provides an air conditioner including the detecting device as described above.
- the wearable state detecting method, the detecting device, and the air conditioner of the smart wearable device provide the temperature value detected by the smart wearable device and the capacitance value generated by the contact between the smart wearable device and the user's skin, if the predetermined wear detection is performed. If the temperature value and the capacitance value meet the preset condition within the number of times, it is determined that the smart wearable device is in a wearing state. In this way, by combining the capacitance value and the air temperature or skin temperature detected by the smart wearable device, the wearing state of the smart wearable device can be accurately detected, thereby providing accurate detection data to improve the user experience.
- FIG. 1 is a schematic flowchart of a first embodiment of a wearable state detecting method of a smart wearable device according to the present invention
- FIG. 2 is a schematic diagram showing a refinement flow of the first embodiment in which the smart wearable device is in a wearing state, if the temperature value and the capacitance value satisfy the preset condition in the predetermined wear detection time step;
- FIG. 3 is a schematic diagram showing a refinement flow of the second embodiment in which the smart wearable device is in a wearing state, if the temperature value and the capacitance value satisfy the preset condition in the predetermined wear detection time step;
- FIG. 4 is a third step of the refinement process of the first embodiment in which the smart wearing device is in a wearing state, if the temperature value and the capacitance value in the predetermined wearing detection times satisfy the preset condition in the step of FIG. Schematic diagram of the refinement process of the embodiment;
- FIG. 5 is a fourth step of the refinement process of the first embodiment in which the smart wearable device is in a wearing state, if the temperature value and the capacitance value satisfy the preset condition within the predetermined number of wear detection times in FIG. Schematic diagram of the refinement process of the embodiment;
- FIG. 6 is a fifth step of the refinement flow of the first embodiment in which the smart wearing device is in a wearing state, if the temperature value and the capacitance value in the predetermined wearing detection times satisfy the preset condition in the step of FIG. Schematic diagram of the refinement process of the embodiment;
- FIG. 7 is a sixth schematic diagram of the refinement flow of the first embodiment in which the smart wearable device is in a wearing state, if the temperature value and the capacitance value in the predetermined wear detection times satisfy the preset condition in FIG. Schematic diagram of the refinement process of the embodiment;
- FIG. 8 is a schematic diagram of the refinement flow of the first embodiment in which the smart wearable device is in a wearing state, if the temperature value and the capacitance value satisfy the preset condition within the predetermined number of wear detection times in FIG. Schematic diagram of the refinement process of the embodiment;
- FIG. 9 is a schematic diagram of the refinement flow of the first embodiment in which the smart wearable device is in a wearing state, if the temperature value and the capacitance value satisfy the preset condition within the predetermined number of wear detection times in FIG. Schematic diagram of the refinement process of the embodiment;
- FIG. 10 is a schematic flowchart of a second embodiment of a method for detecting a wearing state of a smart wearable device according to the present invention.
- FIG. 11 is a schematic diagram of functional modules of an embodiment of a detecting apparatus according to the present invention.
- FIG. 12 is a schematic diagram of a refinement function module of the first embodiment of the determination module of FIG. 11;
- FIG. 13 is a schematic diagram of a refinement function module of the second embodiment of the determination module of FIG. 11;
- Figure 14 is a schematic diagram of functional modules of an embodiment of an air conditioner of the present invention.
- the present invention provides a wearable state detecting method, a detecting device, and an air conditioner of a smart wearable device, which are obtained by acquiring a temperature value detected by the smart wearable device and a capacitance value generated by contact between the smart wearable device and the user's skin. If the temperature value and the capacitance value meet the preset condition within the number of detections, it is determined that the smart wearable device is in a wearing state. In this way, by combining the capacitance value and the air temperature or skin temperature detected by the smart wearable device, the wearing state of the smart wearable device can be accurately detected, thereby providing accurate detection data to improve the user experience.
- a wear status detecting method of the smart wearable device includes the following steps:
- the smart wearable device can be a smart wristband, a smart watch, etc., and has various detection functions such as steps, sleep, heart rate, body temperature, illumination, environmental noise, diet, and the like, and can be connected with a mobile terminal such as a mobile phone.
- a mobile terminal such as a mobile phone.
- Wireless connection such as tablet computers and smart homes such as air conditioners. Therefore, the present invention can directly execute the corresponding detection program by the smart wearable device, or the mobile terminal can acquire the capacitance value and the temperature value detected by the smart wearable device, thereby controlling the detection program.
- the detected temperature value is the skin temperature; and when the smart wearable device is in the unworn state, the detected temperature value is the indoor air temperature.
- the smart wearable device when the air conditioner turns on the body feeling mode, the smart wearable device starts detecting the temperature value and the capacitance value generated by contact with the user's skin, so that the wearing state or the unworn state of the smart wearable device can be determined according to the temperature value and the capacitance value. To run the corresponding wearables program or not wearing the portable program.
- the predetermined number of times of wearing the detection may be set to three times or the like.
- the specific number of detections may be appropriately set according to actual needs, which is not specifically limited in the present invention.
- the capacitance value based on the wearing state detection is higher than the capacitance value detected in the unworn state, and the capacitance value changes obviously.
- the measured capacitance value can be compared with the standard unworn reference value to determine the wearing state of the smart wearable device.
- This embodiment is mainly suitable for a situation in which a false positive is easily caused when the difference between the capacitance value detected by the smart wearable device and the standard unworn reference value is not obvious.
- the wearing state of the smart wearable device can be relatively accurately determined, thereby preventing an error. Judging, thus providing accurate detection data, thereby improving the user experience.
- the wearable state detecting method of the smart wearable device obtains a temperature value detected by the smart wearable device and a capacitance value generated by contact between the smart wearable device and the user's skin, and the temperature value is within a predetermined wear detection number. And determining that the smart wearable device is in a wearing state, and the capacitor values satisfy a preset condition. In this way, by combining the capacitance value and the air temperature or skin temperature detected by the smart wearable device, the wearing state of the smart wearable device can be accurately detected, thereby providing accurate detection data to improve the user experience.
- the step S20 includes:
- Step S201 if the capacitance value is less than or equal to the first predetermined value, determining whether the capacitance value is greater than a second predetermined value and less than or equal to the first predetermined value within a predetermined time;
- the first predetermined value may be set to 5050
- the second predetermined value may be set to 4850
- the predetermined time may be set to 3min.
- the specific numerical values in this embodiment are only for the purpose of understanding and not limiting. In other embodiments, it can be reasonably set according to actual needs.
- the capacitance value detected by the smart wearable device when the capacitance value detected by the smart wearable device is DR>5050, the difference between the capacitance value and the standard unworn reference value is large, and therefore, the smart wearable device can be determined to be in a wearing state.
- the capacitance value detected by the smart wearable device is DR ⁇ 5050, it is not clear whether the smart wearable device is in the wearing state. Therefore, the temperature value detected by the smart wearable device can be combined to further determine the state.
- the standard unworn reference value can be set to 4850, and of course, can be up and down by about 100, which is not limited.
- Step S202 if yes, determining whether the temperature value detected by the smart wearable device is greater than a third predetermined value
- Step S203 If the temperature values are greater than a third predetermined value within a predetermined number of wearing detections, determining that the smart wearable device is in a wearing state.
- the third predetermined value may be set to 30 ° C.
- other temperature values may also be set. Specifically, if, within 3 min, DR meets 4850 ⁇ DR ⁇ 5050, and the temperature value detected by the smart wearable device is Tp > 30 ° C, since the normal body surface temperature of the human body is usually higher than 30 ° C, at this time, it indicates The smart wearable device is worn.
- the second predetermined value may be equal to the standard unworn reference value, or may be larger than the standard unworn reference value, and may be reasonably set according to actual needs.
- Step S214 If the temperature value detected by the smart wearable device is less than or equal to the third predetermined value within a predetermined number of wear detections, determining that the smart wearable device is in an unworn state.
- the smart wearable device if the temperature value Tp detected by the smart wearable device satisfies Tp ⁇ 30 ° C within a predetermined number of times of wearing, for example, the smart wearable device is in an unworn state.
- the step S201 further includes:
- Step S204 If the capacitance value is less than or equal to the second predetermined value within a predetermined number of wearing detections, determining that the smart wearable device is in an unworn state.
- the DR meets 4850 ⁇ DR ⁇ 5050 within 3 min, and the temperature value detected by the smart wearable device is Tp ⁇ 30 ° C, the normal body surface temperature of the human body is usually not lower than 30 ° C. At this time, it indicates that the smart wearable device is in an unworn state.
- the step S201 further includes:
- Step S205 When the return air temperature of the air conditioner is obtained, if it is determined that the capacitance value is greater than a second predetermined value within a predetermined time and less than or equal to the first predetermined value, calculating the temperature detected by the smart wearable device a first difference absolute value between the value and the return air temperature;
- Step S206 determining that the smart wearable device is in a wearing state when the first difference absolute value is greater than a fourth predetermined value.
- the difference between the temperature value and the indoor ambient temperature is determined: when the smart wearable device is in the unworn state, the air temperature is detected at this time.
- the difference between the air temperature and the return air temperature is small; when the smart wearable device is in the wearing state, since the skin temperature is detected at this time, and the difference between the skin temperature and the return air temperature is large, it can be detected according to the smart wearable device.
- the first difference absolute value A
- Tp>T1 Tp-T1 is a positive value
- Tp ⁇ T1 this When Tp-T1 is negative. Therefore, whether or not the wearing state can be determined can be determined by judging whether the magnitude of the absolute value is greater than a fourth predetermined value such as 2 °C.
- the temperature value detected by the smart wearable device includes the air temperature Tp1 and the skin temperature Tp2, and the step S20 further includes:
- Step S207 calculating a second difference absolute value between the air temperature and the skin temperature when acquiring the air temperature detected by the smart wearable device and the skin temperature;
- the smart wearable device is provided with an air temperature sensor and a skin temperature sensor, wherein the air temperature sensor detects the air temperature Tp1 when the smart wear device is in a worn or unworn state; and the skin temperature sensor The skin temperature is detected only when the smart wearable device is in the worn state, and the air temperature is detected in the unworn state.
- Step S208 determining, when the capacitance value is less than or equal to the first predetermined value, whether the capacitance value is greater than a second predetermined value and less than or equal to the first predetermined value, and determining that the second difference is absolute Whether the value is greater than a fourth predetermined value;
- Step S209 if yes, if the temperature value is greater than the third predetermined value within the predetermined number of wearing detections, determining that the smart wearable device is in the wearing state.
- B satisfies B>1 ° C within a predetermined number of times of wearing the detection, for example, 3 times, it indicates that the smart wearable device is in a wearing state.
- a step of determining whether the absolute value of the second difference value is greater than a fourth predetermined value is added.
- the increase of the step may further increase the accuracy of determining whether the smart wearable device is in a wearing state. Thereby avoiding false positives. Because the data detected by the smart wearable device is more precise, it can provide users with more comfortable environmental conditions.
- step S208 further includes:
- Step S210 If the capacitance value is less than or equal to the second predetermined value within a predetermined number of wear detection times, and the second difference absolute value is less than or equal to a fourth predetermined value, determining that the smart wearable device is not Wearing state.
- the smart wearable device may be further accurately judged to be in an unworn state.
- step S208 further includes:
- Step S211 the capacitance value is less than or equal to the second predetermined value, and the second difference absolute value is greater than the fourth predetermined value; or the capacitance value is greater than a second predetermined value and less than or equal to
- the first predetermined value is described, and the second difference absolute value is less than or equal to the fourth predetermined value, the air temperature detected by the smart wearable device and the skin temperature are re-acquired.
- Each parameter value is judged again.
- the method further includes:
- Step S212 the capacitance value is less than or equal to the second predetermined value, and the second difference absolute value is greater than the fourth predetermined value; or the capacitance value is greater than a second predetermined value and less than or equal to Calculating the first predetermined value, and when the second difference absolute value is less than or equal to the fourth predetermined value, if the air conditioner return air temperature is acquired, calculating the temperature value detected by the smart wearable device and the back The third difference absolute value between wind temperatures;
- Step S213 If the third difference absolute value is greater than the fifth predetermined value within the predetermined number of wear detections, it is determined that the smart wearable device is in the wearing state.
- the smart wearable device If the absolute value of the third difference C satisfies C>2 ° C within the predetermined number of wearing detections, it can be determined that the smart wearable device is in the wearing state; otherwise, if C ⁇ 2 ° C, it indicates that the detected data may be incorrect at this time. You need to re-acquire the values of each parameter and judge again.
- step S10 further includes:
- the smart wearable device is in the wearing state.
- the smart wearable device can detect the parameters such as the body surface temperature and the heart rate of the user in real time or at a time, when the user enters the room, if the smart wearable device is judged to be wearing, the body surface temperature of the user can be accurately obtained and passed through the smart
- the wearable device is directly sent to the smart home such as an air conditioner or forwarded to the air conditioner by the mobile terminal, thereby automatically adjusting to the temperature, humidity, etc. that the user feels comfortable; if the smart wearable device is judged to be unworn, the user may be prompted to be in a preset time.
- the smart wearable device is worn, if it is determined that the wearable state is exceeded for a predetermined period of time, the indoor environment temperature is automatically acquired by the air conditioner, and a normal air-conditioning control program is performed.
- the user's heart rate parameter can be accurately obtained and sent directly to the smart home such as an air conditioner or forwarded to the air conditioner by the mobile terminal through the smart wearable device, thereby automatically adjusting to The user feels comfortable temperature, humidity, etc.; if it is judged that the smart wearable device is not worn, the user may be prompted to wear the smart wearable device in a preset time, and when it is determined that the wearable state is exceeded, the sleep is automatically performed. mode.
- the present invention also provides a detecting device 1 .
- the detecting device 1 includes:
- the obtaining module 10 is configured to obtain a temperature value detected by the smart wearable device and a capacitance value generated by contact between the smart wearable device and the user skin;
- the smart wearable device can be a smart wristband, a smart watch, etc., and has various detection functions such as steps, sleep, heart rate, body temperature, illumination, environmental noise, diet, and the like, and can be connected with a mobile terminal such as a mobile phone.
- a mobile terminal such as a mobile phone.
- Wireless connection such as tablet computers and smart homes such as air conditioners. Therefore, the present invention can directly execute the corresponding detection program by the smart wearable device, or the mobile terminal can acquire the capacitance value and the temperature value detected by the smart wearable device, thereby controlling the detection program.
- the detected temperature value is the skin temperature; and when the smart wearable device is in the unworn state, the detected temperature value is the indoor air temperature.
- the smart wearable device when the air conditioner turns on the body feeling mode, the smart wearable device starts detecting the temperature value and the capacitance value generated by contact with the user's skin, so that the wearing state or the unworn state of the smart wearable device can be determined according to the temperature value and the capacitance value. To run the corresponding wearables program or not wearing the portable program.
- the determining module 20 is configured to determine that the smart wearable device is in a wearing state if the temperature value and the capacitance value satisfy a preset condition within a predetermined number of wearing detections.
- the predetermined number of times of wearing the detection may be set to three times or the like.
- the specific number of detections may be appropriately set according to actual needs, which is not specifically limited in the present invention.
- the capacitance value based on the wearing state detection is higher than the capacitance value detected in the unworn state, and the capacitance value changes obviously.
- the measured capacitance value can be compared with the standard unworn reference value to determine the wearing state of the smart wearable device.
- This embodiment is mainly suitable for a situation in which a false positive is easily caused when the difference between the capacitance value detected by the smart wearable device and the standard unworn reference value is not obvious.
- the wearing state of the smart wearable device can be relatively accurately determined, thereby preventing an error. Judging, thus providing accurate detection data, thereby improving the user experience.
- the detection device 1 obtaineds the temperature value detected by the smart wearable device and the capacitance value generated by the contact between the smart wearable device and the user's skin, and the temperature value and the capacitance value within a predetermined number of wear detection times. If the preset conditions are met, it is determined that the smart wearable device is in a wearing state. In this way, by combining the capacitance value and the air temperature or skin temperature detected by the smart wearable device, the wearing state of the smart wearable device can be accurately detected, thereby providing accurate detection data to improve the user experience.
- the determination module 20 includes:
- the determining unit 201 is configured to determine, if the capacitance value is less than or equal to the first predetermined value, whether the capacitance value is greater than a second predetermined value and less than or equal to the first predetermined value within a predetermined time;
- the first predetermined value may be set to 5050
- the second predetermined value may be set to 4850
- the predetermined time may be set to 3min.
- the specific numerical values in this embodiment are only for the purpose of understanding and not limiting. In other embodiments, it can be reasonably set according to actual needs.
- the capacitance value detected by the smart wearable device when the capacitance value detected by the smart wearable device is DR>5050, the difference between the capacitance value and the standard unworn reference value is large, and therefore, the smart wearable device can be determined to be in a wearing state.
- the capacitance value detected by the smart wearable device is DR ⁇ 5050, it is not clear whether the smart wearable device is in the wearing state. Therefore, the temperature value detected by the smart wearable device can be combined to further determine the state.
- the standard unworn reference value can be set to 4850, and of course, can be up and down by about 100, which is not limited.
- the determining unit 201 is further configured to: if yes, determine whether the temperature value detected by the smart wearable device is greater than a third predetermined value;
- the determining unit 202 is configured to determine that the smart wearable device is in a wearing state if the temperature value is greater than a third predetermined value within a predetermined number of wearing detections.
- the third predetermined value may be set to 30 ° C.
- other temperature values may also be set. Specifically, if, within 3 min, DR meets 4850 ⁇ DR ⁇ 5050, and the temperature value detected by the smart wearable device is Tp > 30 ° C, since the normal body surface temperature of the human body is usually higher than 30 ° C, at this time, it indicates The smart wearable device is worn.
- the second predetermined value may be equal to the standard unworn reference value, or may be larger than the standard unworn reference value, and may be reasonably set according to actual needs.
- the determining unit 202 is further configured to determine that the smart wearable device is in an unworn state if the temperature value detected by the smart wearable device is less than or equal to the third predetermined value within a predetermined number of wear detection times.
- the smart wearable device if the temperature value Tp detected by the smart wearable device satisfies Tp ⁇ 30 ° C within a predetermined number of times of wearing, for example, the smart wearable device is in an unworn state.
- the determining unit 202 is further configured to:
- the capacitance value is less than or equal to the second predetermined value within a predetermined number of wearing detections, it is determined that the smart wearable device is in an unworn state.
- the DR meets 4850 ⁇ DR ⁇ 5050 within 3 min, and the temperature value detected by the smart wearable device is Tp ⁇ 30 ° C, the normal body surface temperature of the human body is usually not lower than 30 ° C. At this time, it indicates that the smart wearable device is in an unworn state.
- the determining module 20 further includes:
- the calculating unit 203 is configured to calculate the smart wearable device if it is determined that the capacitance value is greater than a second predetermined value and less than or equal to the first predetermined value within a predetermined time when the air return temperature of the air conditioner is obtained a first difference absolute value between the detected temperature value and the return air temperature;
- the determining unit 202 is further configured to determine that the smart wearable device is in a wearing state when the first difference absolute value is greater than a fourth predetermined value.
- the difference between the temperature value and the indoor ambient temperature is determined: when the smart wearable device is in the unworn state, the air temperature is detected at this time.
- the difference between the air temperature and the return air temperature is small; when the smart wearable device is in the wearing state, since the skin temperature is detected at this time, and the difference between the skin temperature and the return air temperature is large, it can be detected according to the smart wearable device.
- the first difference absolute value A
- Tp>T1 Tp-T1 is a positive value
- Tp ⁇ T1 this When Tp-T1 is negative. Therefore, whether or not the wearing state can be determined can be determined by judging whether the magnitude of the absolute value is greater than a fourth predetermined value such as 2 °C.
- the temperature value detected by the smart wearable device includes an air temperature Tp1 and a skin temperature Tp2, and the determining module 20 further includes:
- the calculating unit 203 is configured to calculate a second difference absolute value between the air temperature and the skin temperature when the air temperature detected by the smart wearable device and the skin temperature are acquired;
- the smart wearable device is provided with an air temperature sensor and a skin temperature sensor, wherein the air temperature sensor detects the air temperature Tp1 when the smart wear device is in a worn or unworn state; and the skin temperature sensor The skin temperature is detected only when the smart wearable device is in the worn state, and the air temperature is detected in the unworn state.
- the determining unit 201 is further configured to: when the capacitance value is less than or equal to the first predetermined value, determine whether the capacitance value is greater than a second predetermined value and less than or equal to the first predetermined value, and determine the location Whether the absolute value of the second difference is greater than a fourth predetermined value;
- the determining unit 202 is further configured to: if yes, determine that the smart wearable device is in a wearing state if the temperature value is greater than a third predetermined value within a predetermined number of wearing detections.
- B satisfies B>1 ° C within a predetermined number of times of wearing the detection, for example, 3 times, it indicates that the smart wearable device is in a wearing state.
- a step of determining whether the absolute value of the second difference value is greater than a fourth predetermined value is added.
- the increase of the step may further increase the accuracy of determining whether the smart wearable device is in a wearing state. Thereby avoiding false positives. Because the data detected by the smart wearable device is more precise, it can provide users with more comfortable environmental conditions.
- the determining unit 202 is further configured to:
- the capacitance value is less than or equal to the second predetermined value within a predetermined number of wearing detections, and the second difference absolute value is less than or equal to a fourth predetermined value, determining that the smart wearable device is in an unworn state.
- the smart wearable device may be further accurately judged to be in an unworn state.
- the acquiring module 10 is configured to: when the capacitance value is less than or equal to the second predetermined value, and the absolute value of the second difference is greater than Relating the fourth predetermined value; or re-acquiring the capacitance value when the capacitance value is greater than the second predetermined value and less than or equal to the first predetermined value, while the second difference absolute value is less than or equal to the fourth predetermined value.
- Each parameter value is judged again.
- the calculating unit 203 is further configured to:
- the capacitance value is less than or equal to the second predetermined value, and the second difference absolute value is greater than the fourth predetermined value; or the capacitance value is greater than a second predetermined value and less than or equal to the first Calculating a value, and when the absolute value of the second difference is less than or equal to the fourth predetermined value, if the return air temperature of the air conditioner is obtained, calculating a temperature value detected by the smart wearable device and the return air temperature
- the determining unit 202 is further configured to determine that the smart wearable device is in a wearing state if the third difference absolute value is greater than a fifth predetermined value within a predetermined number of wearing detections.
- the smart wearable device If the absolute value of the third difference C satisfies C>2 ° C within the predetermined number of wearing detections, it can be determined that the smart wearable device is in the wearing state; otherwise, if C ⁇ 2 ° C, it indicates that the detected data may be incorrect at this time. You need to re-acquire the values of each parameter and judge again.
- the present invention also provides an air conditioner 100, as shown in FIG. 14, in an embodiment, the air conditioner 100 includes the detecting device 1 as described above, and the detecting device 1 is used for acquiring The temperature value detected by the smart wearable device and the capacitance value generated by the contact between the smart wearable device and the user's skin, if the temperature value and the capacitance value satisfy the preset condition within the predetermined wear detection number, The smart wearable device is worn.
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- Measuring And Recording Apparatus For Diagnosis (AREA)
Abstract
一种智能穿戴设备的穿戴状态检测方法,包括以下步骤:获取智能穿戴设备检测的温度值以及智能穿戴设备与用户皮肤之间接触产生的电容值;若在预定佩戴检测次数内温度值以及电容值均满足预设条件,则判定智能穿戴设备处于佩戴状态。还公开了一种检测装置及带有该检测装置的空调器。不仅通过电容检测,同时也通过智能穿戴设备检测的环境温度或皮肤温度来综合判断其佩戴状态,从而可以提供精确的检测数据,以提高用户体验。
Description
技术领域
本发明涉及电子控制技术领域,尤其涉及一种智能穿戴设备的穿戴状态检测方法、检测装置及空调器。
背景技术
现有的智能穿戴设备如智能手表、智能手环等,在执行计步和睡眠等检测功能时,若用户佩戴该智能穿戴设备过于松弛时,则可能无法判断用户是否带上智能穿戴设备,进而会误认为用户处于久坐或深度睡眠的状态,从而导致监测的数据错误。另外仅仅根据电容值判断是否佩戴存在一定的误差,从而导致空调器的舒适性控制出现误差,进而减低用户体验。
发明内容
本发明的主要目的在于提供一种智能穿戴设备的穿戴状态检测方法、检测装置及空调器,旨在不仅仅通过电容检测,同时也通过智能穿戴设备检测的环境温度或皮肤温度来综合判断其佩戴状态,从而可以提供精确的检测数据,以提高用户体验。
为实现上述目的,本发明提供一种智能穿戴设备的穿戴状态检测方法,包括以下步骤:
获取智能穿戴设备检测的温度值以及所述智能穿戴设备与用户皮肤之间接触产生的电容值;
若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态。
为实现上述目的,本发明还提供一种检测装置,所述检测装置包括:
获取模块,用于获取智能穿戴设备检测的温度值以及所述智能穿戴设备与用户皮肤之间接触产生的电容值;
判定模块,用于若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态。
为实现上述目的,本发明还提供一种空调器,所述空调器包括如上所述的检测装置。
本发明提供的智能穿戴设备的穿戴状态检测方法、检测装置及空调器,通过获取智能穿戴设备检测的温度值以及所述智能穿戴设备与用户皮肤之间接触产生的电容值,若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态。这样,通过结合电容值以及智能穿戴设备检测的空气温度或皮肤温度,可以准确检测智能穿戴设备的穿戴状态,从而提供精确的检测数据,以提高用户体验。
附图说明
图1为本发明智能穿戴设备的穿戴状态检测方法第一实施例的流程示意图;
图2为图1中步骤若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态第一实施例的细化流程示意图;
图3为图1中步骤若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态第二实施例的细化流程示意图;
图4为图1中步骤若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态第一实施例的细化流程示意图第三实施例的细化流程示意图;
图5为图1中步骤若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态第一实施例的细化流程示意图第四实施例的细化流程示意图;
图6为图1中步骤若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态第一实施例的细化流程示意图第五实施例的细化流程示意图;
图7为图1中步骤若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态第一实施例的细化流程示意图第六实施例的细化流程示意图;
图8为图1中步骤若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态第一实施例的细化流程示意图第七实施例的细化流程示意图;
图9为图1中步骤若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态第一实施例的细化流程示意图第八实施例的细化流程示意图;
图10为本发明智能穿戴设备的穿戴状态检测方法第二实施例的流程示意图;
图11为本发明检测装置一实施例的功能模块示意图;
图12为图11中判定模块第一实施例的细化功能模块示意图;
图13为图11中判定模块第二实施例的细化功能模块示意图;
图14为本发明空调器一实施例的功能模块示意图。
本发明目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
具体实施方式
应当理解,此处所描述的具体实施例仅仅用以解释本发明,并不用于限定本发明。
本发明提供一种智能穿戴设备的穿戴状态检测方法、检测装置及空调器,通过获取智能穿戴设备检测的温度值以及所述智能穿戴设备与用户皮肤之间接触产生的电容值,若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态。这样,通过结合电容值以及智能穿戴设备检测的空气温度或皮肤温度,可以准确检测智能穿戴设备的穿戴状态,从而提供精确的检测数据,以提高用户体验。
参照图1,在一实施例中,所述智能穿戴设备的穿戴状态检测方法包括以下步骤:
S10、获取智能穿戴设备检测的温度值以及所述智能穿戴设备与用户皮肤之间接触产生的电容值;
本实施例中,所述智能穿戴设备可以为智能手环、智能手表等,具有步数、睡眠、心率、体温、光照、环境噪声、饮食等多种检测功能,并可与移动终端如手机、平板电脑等设备、智能家居如空调等进行无线连接。因此,本发明可以由智能穿戴设备来直接执行对应的检测程序,也可以由移动终端来获取由智能穿戴设备检测的容值以及温度值,进而控制检测程序。
可以理解的是,当智能穿戴设备为佩戴状态时,检测的温度值为皮肤温度;而当智能穿戴设备为未佩戴状态时,检测的温度值则为室内空气温度。
本实施例中,空调器开启随身感模式时,智能穿戴设备开始检测温度值以及与用户皮肤接触产生的电容值,这样,可以根据温度值和电容值判断智能穿戴设备的佩戴状态或未佩戴状态,以运行对应的佩戴随身感程序或未佩戴随身感程序。
S20、若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态。
本实施例中,预定佩戴检测次数可以设置为3次等,当然,在其他实施例中,可以根据实际需要合理设置具体检测次数,本发明对此不作具体限定。
基于佩戴状态检测的电容值比未佩戴状态检测的电容值较高,且电容值变化较明显,可以根据检测的电容值与标准未佩戴参考值进行比较,以判断智能穿戴设备的穿戴状态。本实施例主要适于当智能穿戴设备检测的电容值与标准未佩戴参考值的差值不太明显时,容易发生误判的情形。此时,结合智能穿戴设备检测的温度值,如在佩戴时检测的为皮肤温度值,在未佩戴时检测的是空气温度值,可以比较精确地判断智能穿戴设备的穿戴状态,从而防止发生误判,从而可以提供精确的检测数据,进而提高用户体验。
本发明提供的智能穿戴设备的穿戴状态检测方法,通过获取智能穿戴设备检测的温度值以及所述智能穿戴设备与用户皮肤之间接触产生的电容值,若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态。这样,通过结合电容值以及智能穿戴设备检测的空气温度或皮肤温度,可以准确检测智能穿戴设备的穿戴状态,从而提供精确的检测数据,以提高用户体验。
在第一实施例中,如图3所示,在上述图2所示的基础上,所述步骤S20包括:
步骤S201、若所述电容值小于或等于第一预定值,则判断所述电容值是否在预定时间内均大于第二预定值且小于或等于所述第一预定值;
本实施例中,第一预定值可以设置为5050,第二预定值可以设置为4850,预定时间可以设置为3min。当然,本实施例中的具体数值仅作帮助理解之用,并不起限定作用。其他实施例中,可以根据实际需要合理设置。
具体地,如:当智能穿戴设备检测的电容值DR>5050,此时,电容值与标准未佩戴参考值差值较大,因此,可以确定智能穿戴设备为佩戴状态。而当智能穿戴设备检测的电容值DR≤5050,此时,不能明确智能穿戴设备是否处于佩戴状态,因此,可以结合智能穿戴设备检测的温度值,以进一步确定其状态。其中,标准未佩戴参考值可以设置为4850,当然可以上下浮动100左右,具体不作限定。
步骤S202、若是,则判断所述智能穿戴设备检测的温度值是否大于第三预定值;
步骤S203、若在预定佩戴检测次数内所述温度值均大于第三预定值,则判定所述智能穿戴设备处于佩戴状态。
本实施例中,第三预定值可以设置为30℃,当然其他实施例中,还可以设置为其他温度值。具体地,如:若在3min内,DR均满足4850<DR≤5050,且智能穿戴设备检测的温度值Tp>30℃,由于人体正常体表温度通常会高于30℃,此时,则表明智能穿戴设备处于佩戴状态。其中,第二预定值可以与标准未佩戴参考值相等,或者比标准未佩戴参考值大,具体可以根据实际需要合理设置。
步骤S214、若在预定佩戴检测次数内所述智能穿戴设备检测的温度值均小于或等于所述第三预定值,则判定所述智能穿戴设备处于未佩戴状态。
本实施例中,若在预定检测佩戴次数如3次内,所述智能穿戴设备检测的温度值Tp均满足Tp≤30℃,则表明智能穿戴设备处于未佩戴状态。
在一实施例中,如图4所示,在上述图1所示的基础上,所述步骤S201之后还包括:
步骤S204、若在预定佩戴检测次数内所述电容值小于或等于所述第二预定值,则判定所述智能穿戴设备处于未佩戴状态。
本实施例中,具体地,如:若在3min内,DR均满足4850<DR≤5050,且智能穿戴设备检测的温度值Tp≤30℃,由于人体正常体表温度通常不会低于30℃,此时,则表明智能穿戴设备处于未佩戴状态。
在一实施例中,如图5所示,在上述图1所示的基础上,所述步骤S201之后还包括:
步骤S205、在获取到空调器回风温度时,若判定所述电容值在预定时间内均大于第二预定值且小于或等于所述第一预定值,则计算所述智能穿戴设备检测的温度值与所述回风温度之间的第一差值绝对值;
步骤S206、在所述第一差值绝对值大于第四预定值时,判定所述智能穿戴设备处于佩戴状态。
本实施例中,通过将智能穿戴设备检测的温度值与回风温度进行比较,来判断温度值与室内环境温度的差异:当智能穿戴设备处于未佩戴状态时,由于此时检测的是空气温度,空气温度与回风温度差别不大;当智能穿戴设备为佩戴状态时,由于此时检测的是皮肤温度,而皮肤温度与回风温度的差异较大,因此,可以根据智能穿戴设备检测的温度值Tp与所述回风温度T1之间的第一差值绝对值A=|Tp-
T1|来进行判断。
以佩戴状态为例,由于存在制冷、制热的情况,在空调器处于制冷模式时,Tp>T1,此时Tp-T1为正值;在空调器处于制热模式时,Tp<T1,此时Tp-T1为负值。因此,可以通过判断绝对值的大小是否大于第四预定值如2℃,来确定是否处于佩戴状态。
在第二实施例中,如图6所示,在上述图1所示的基础上,所述智能穿戴设备检测的温度值包括空气温度Tp1以及皮肤温度Tp2,所述步骤S20还包括:
步骤S207、在获取到所述智能穿戴设备检测的空气温度以及皮肤温度时,计算所述空气温度和皮肤温度之间的第二差值绝对值;
本实施例中,所述智能穿戴设备上设置有空气温度传感器和皮肤温度传感器,其中,空气温度传感器在智能穿戴设备处于佩戴或未佩戴状态时,检测的均是空气温度Tp1;而皮肤温度传感器只有在智能穿戴设备处于佩戴状态下检测的才是皮肤温度,而在未佩戴状态检测的是空气温度。
步骤S208、在所述电容值小于或等于所述第一预定值时,判断所述电容值是否大于第二预定值且小于或等于所述第一预定值,同时判断所述第二差值绝对值是否大于第四预定值;
步骤S209、若是,则在预定佩戴检测次数内若所述温度值均大于第三预定值,则判定所述智能穿戴设备处于佩戴状态。
本实施例中,当智能穿戴设备检测的电容值DR≤5050时,判断DR是否满足4850<DR≤5050,同时第二差值绝对值B= |Tp1-
Tp2|是否满足B>1℃。当在预定佩戴检测次数如3次内,B均满足B>1℃,则表明所述智能穿戴设备处于佩戴状态。
本实施例相对于第一实施例,增加了判断所述第二差值绝对值是否大于第四预定值的步骤,此步骤的增加,可以进一步增加判断智能穿戴设备是否为佩戴状态的准确性,从而避免误判。由于智能穿戴设备检测的数据更精准,因此,可以为用户提供更舒适的环境条件。
在一实施例中,如图7所示,在上述图6所示的基础上,所述步骤S208之后还包括:
步骤S210、若在预定佩戴检测次数内所述电容值小于或等于所述第二预定值,且所述第二差值绝对值小于或等于第四预定值,则判定所述智能穿戴设备处于未佩戴状态。
本实施例中,具体地,如:在预定佩戴检测次数如3次内,DR≤4850,且第二差值绝对值B≤1℃,由于DR与标准未佩戴参考值基本相当,表明智能穿戴设备可能处于未佩戴状态,而若同时B≤1℃,则可以进一步准确地判断所述智能穿戴设备处于未佩戴状态。
在一实施例中,如图8所示,在上述图7所示的基础上,所述步骤S208之后还包括:
步骤S211、在所述电容值小于或等于所述第二预定值,且所述第二差值绝对值大于所述第四预定值;或所述电容值大于第二预定值且小于或等于所述第一预定值,同时所述第二差值绝对值小于或等于所述第四预定值时,重新获取所述智能穿戴设备检测的空气温度以及皮肤温度。
本实施例中,电容值DR≤4850,且第二差值绝对值B>1℃;或4850<DR≤5050,且B≤1℃时,表明此时检测的数据可能有误,需要重新获取各个参数值,再次进行判断。
在一实施例中,如图9所示,在上述图8所示的基础上,所述步骤S208之后还包括:
步骤S212、在所述电容值小于或等于所述第二预定值,且所述第二差值绝对值大于所述第四预定值;或所述电容值大于第二预定值且小于或等于所述第一预定值,同时所述第二差值绝对值小于或等于所述第四预定值时,若获取到空调器回风温度,则计算所述智能穿戴设备检测的温度值与所述回风温度之间的第三差值绝对值;
步骤S213、若在预定佩戴检测次数内所述第三差值绝对值均大于第五预定值,则判定所述智能穿戴设备处于佩戴状态。
本实施例中,电容值DR≤4850,且第二差值绝对值B>1℃;或4850<DR≤5050,且B≤1℃时,若能获取到回风温度,则可以计算所述智能穿戴设备检测的温度值Tp2与所述回风温度T1之间的第三差值绝对值C=
|Tp2- T1|,并根据第三差值绝对值与第五预定值如2℃的大小关系,进行判断:
若在预定佩戴检测次数内,第三差值绝对值C均满足C>2℃,则可以判定智能穿戴设备处于佩戴状态;反之,若C≤2℃,则表明此时检测的数据可能有误,需要重新获取各个参数值,再次进行判断。
可以理解的是,此时,由于DR是否4850<DR≤5050,以及B= |Tp1-
Tp2|是否满足B>1℃的条件已经不能准确判断出智能穿戴设备的状态,因此,可以结合皮肤温度传感器检测的Tp2与回风温度T1的大小进行比较而进行判断,因此,此处智能穿戴设备检测的温度值即为Tp2。
在一实施例中,如图10所示,在上述图1所示的基础上,所述步骤S10之后还包括:
S30、当在预定佩戴检测次数内所述电容值均大于第一预定值时,判定所述智能穿戴设备处于佩戴状态。
本实施例中,若在预定佩戴检测次数如3次内,电容值DR>5050,则可以判定所述智能穿戴设备处于佩戴状态。
以下结合具体场景来进行说明:
由于智能穿戴设备可以实时或定时检测用户的体表温度、心率等参数,这样,当用户进入室内时,若判断智能穿戴设备为佩戴状态,则可以准确地获取用户的体表温度,并通过智能穿戴设备直接发送至智能家居如空调或由移动终端转发至空调,从而自动调整到用户感觉舒适的温度、湿度等;若判断智能穿戴设备为未佩戴状态,则可以提示用户在预设时间内及时佩戴智能穿戴设备,当超过预定时间,仍然判断为未佩戴状态,则自动由空调获取室内环境温度,进行正常的空调控制程序。
当用户在卧室睡觉时,若判断智能穿戴设备为佩戴状态,则可以准确地获取用户的心率参数,并通过智能穿戴设备直接发送至智能家居如空调或由移动终端转发至空调,从而自动调整到用户感觉舒适的温度、湿度等;若判断智能穿戴设备为未佩戴状态,则可以提示用户在预设时间内及时佩戴智能穿戴设备,当超过预定时间,仍然判断为未佩戴状态,则自动进行睡眠模式。
本发明还提供一种检测装置1,参照图11,在一实施例中,所述检测装置1包括:
获取模块10,用于获取智能穿戴设备检测的温度值以及所述智能穿戴设备与用户皮肤之间接触产生的电容值;
本实施例中,所述智能穿戴设备可以为智能手环、智能手表等,具有步数、睡眠、心率、体温、光照、环境噪声、饮食等多种检测功能,并可与移动终端如手机、平板电脑等设备、智能家居如空调等进行无线连接。因此,本发明可以由智能穿戴设备来直接执行对应的检测程序,也可以由移动终端来获取由智能穿戴设备检测的容值以及温度值,进而控制检测程序。
可以理解的是,当智能穿戴设备为佩戴状态时,检测的温度值为皮肤温度;而当智能穿戴设备为未佩戴状态时,检测的温度值则为室内空气温度。
本实施例中,空调器开启随身感模式时,智能穿戴设备开始检测温度值以及与用户皮肤接触产生的电容值,这样,可以根据温度值和电容值判断智能穿戴设备的佩戴状态或未佩戴状态,以运行对应的佩戴随身感程序或未佩戴随身感程序。
判定模块20,用于若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态。
本实施例中,预定佩戴检测次数可以设置为3次等,当然,在其他实施例中,可以根据实际需要合理设置具体检测次数,本发明对此不作具体限定。
基于佩戴状态检测的电容值比未佩戴状态检测的电容值较高,且电容值变化较明显,可以根据检测的电容值与标准未佩戴参考值进行比较,以判断智能穿戴设备的穿戴状态。本实施例主要适于当智能穿戴设备检测的电容值与标准未佩戴参考值的差值不太明显时,容易发生误判的情形。此时,结合智能穿戴设备检测的温度值,如在佩戴时检测的为皮肤温度值,在未佩戴时检测的是空气温度值,可以比较精确地判断智能穿戴设备的穿戴状态,从而防止发生误判,从而可以提供精确的检测数据,进而提高用户体验。
本发明提供的检测装置1,通过获取智能穿戴设备检测的温度值以及所述智能穿戴设备与用户皮肤之间接触产生的电容值,若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态。这样,通过结合电容值以及智能穿戴设备检测的空气温度或皮肤温度,可以准确检测智能穿戴设备的穿戴状态,从而提供精确的检测数据,以提高用户体验。
在第一实施例中,如图12所示,在上述图11所示的基础上,所述判定模块20包括:
判断单元201,用于若所述电容值小于或等于第一预定值,则判断所述电容值是否在预定时间内均大于第二预定值且小于或等于所述第一预定值;
本实施例中,第一预定值可以设置为5050,第二预定值可以设置为4850,预定时间可以设置为3min。当然,本实施例中的具体数值仅作帮助理解之用,并不起限定作用。其他实施例中,可以根据实际需要合理设置。
具体地,如:当智能穿戴设备检测的电容值DR>5050,此时,电容值与标准未佩戴参考值差值较大,因此,可以确定智能穿戴设备为佩戴状态。而当智能穿戴设备检测的电容值DR≤5050,此时,不能明确智能穿戴设备是否处于佩戴状态,因此,可以结合智能穿戴设备检测的温度值,以进一步确定其状态。其中,标准未佩戴参考值可以设置为4850,当然可以上下浮动100左右,具体不作限定。
所述判断单元201,还用于若是,则判断所述智能穿戴设备检测的温度值是否大于第三预定值;
判定单元202,用于若在预定佩戴检测次数内所述温度值均大于第三预定值,则判定所述智能穿戴设备处于佩戴状态。
本实施例中,第三预定值可以设置为30℃,当然其他实施例中,还可以设置为其他温度值。具体地,如:若在3min内,DR均满足4850<DR≤5050,且智能穿戴设备检测的温度值Tp>30℃,由于人体正常体表温度通常会高于30℃,此时,则表明智能穿戴设备处于佩戴状态。其中,第二预定值可以与标准未佩戴参考值相等,或者比标准未佩戴参考值大,具体可以根据实际需要合理设置。
所述判定单元202,还用于若在预定佩戴检测次数内所述智能穿戴设备检测的温度值均小于或等于所述第三预定值,则判定所述智能穿戴设备处于未佩戴状态。
本实施例中,若在预定检测佩戴次数如3次内,所述智能穿戴设备检测的温度值Tp均满足Tp≤30℃,则表明智能穿戴设备处于未佩戴状态。
在一实施例中,在上述图12所示的基础上,所述判定单元202还用于:
若在预定佩戴检测次数内所述电容值小于或等于所述第二预定值,则判定所述智能穿戴设备处于未佩戴状态。
本实施例中,具体地,如:若在3min内,DR均满足4850<DR≤5050,且智能穿戴设备检测的温度值Tp≤30℃,由于人体正常体表温度通常不会低于30℃,此时,则表明智能穿戴设备处于未佩戴状态。
在一实施例中,如图13所示,在上述图12所示的基础上,所述判定模块20还包括:
计算单元203,用于在获取到空调器回风温度时,若判定所述电容值在预定时间内均大于第二预定值且小于或等于所述第一预定值,则计算所述智能穿戴设备检测的温度值与所述回风温度之间的第一差值绝对值;
所述判定单元202,还用于在所述第一差值绝对值大于第四预定值时,判定所述智能穿戴设备处于佩戴状态。
本实施例中,通过将智能穿戴设备检测的温度值与回风温度进行比较,来判断温度值与室内环境温度的差异:当智能穿戴设备处于未佩戴状态时,由于此时检测的是空气温度,空气温度与回风温度差别不大;当智能穿戴设备为佩戴状态时,由于此时检测的是皮肤温度,而皮肤温度与回风温度的差异较大,因此,可以根据智能穿戴设备检测的温度值Tp与所述回风温度T1之间的第一差值绝对值A=|Tp-
T1|来进行判断。
以佩戴状态为例,由于存在制冷、制热的情况,在空调器处于制冷模式时,Tp>T1,此时Tp-T1为正值;在空调器处于制热模式时,Tp<T1,此时Tp-T1为负值。因此,可以通过判断绝对值的大小是否大于第四预定值如2℃,来确定是否处于佩戴状态。
在第二实施例中,如图13所示,所述智能穿戴设备检测的温度值包括空气温度Tp1以及皮肤温度Tp2,所述判定模块20还包括:
计算单元203,用于在获取到所述智能穿戴设备检测的空气温度以及皮肤温度时,计算所述空气温度和皮肤温度之间的第二差值绝对值;
本实施例中,所述智能穿戴设备上设置有空气温度传感器和皮肤温度传感器,其中,空气温度传感器在智能穿戴设备处于佩戴或未佩戴状态时,检测的均是空气温度Tp1;而皮肤温度传感器只有在智能穿戴设备处于佩戴状态下检测的才是皮肤温度,而在未佩戴状态检测的是空气温度。
所述判断单元201,还用于在所述电容值小于或等于所述第一预定值时,判断所述电容值是否大于第二预定值且小于或等于所述第一预定值,同时判断所述第二差值绝对值是否大于第四预定值;
所述判定单元202,还用于若是,则在预定佩戴检测次数内若所述温度值均大于第三预定值,则判定所述智能穿戴设备处于佩戴状态。
本实施例中,当智能穿戴设备检测的电容值DR≤5050时,判断DR是否满足4850<DR≤5050,同时第二差值绝对值B= |Tp1-
Tp2|是否满足B>1℃。当在预定佩戴检测次数如3次内,B均满足B>1℃,则表明所述智能穿戴设备处于佩戴状态。
本实施例相对于第一实施例,增加了判断所述第二差值绝对值是否大于第四预定值的步骤,此步骤的增加,可以进一步增加判断智能穿戴设备是否为佩戴状态的准确性,从而避免误判。由于智能穿戴设备检测的数据更精准,因此,可以为用户提供更舒适的环境条件。
在一实施例中,如图13所示,所述判定单元202还用于:
若在预定佩戴检测次数内所述电容值小于或等于所述第二预定值,且所述第二差值绝对值小于或等于第四预定值,则判定所述智能穿戴设备处于未佩戴状态。
本实施例中,具体地,如:在预定佩戴检测次数如3次内,DR≤4850,且第二差值绝对值B≤1℃,由于DR与标准未佩戴参考值基本相当,表明智能穿戴设备可能处于未佩戴状态,而若同时B≤1℃,则可以进一步准确地判断所述智能穿戴设备处于未佩戴状态。
在一实施例中,在上述图11所示的基础上,所述获取模块10,用于在所述电容值小于或等于所述第二预定值,且所述第二差值绝对值大于所述第四预定值;或所述电容值大于第二预定值且小于或等于所述第一预定值,同时所述第二差值绝对值小于或等于所述第四预定值时,重新获取所述智能穿戴设备检测的空气温度以及皮肤温度。
本实施例中,电容值DR≤4850,且第二差值绝对值B>1℃;或4850<DR≤5050,且B≤1℃时,表明此时检测的数据可能有误,需要重新获取各个参数值,再次进行判断。
在一实施例中,在上述图13所示的基础上,所述计算单元203还用于:
在所述电容值小于或等于所述第二预定值,且所述第二差值绝对值大于所述第四预定值;或所述电容值大于第二预定值且小于或等于所述第一预定值,同时所述第二差值绝对值小于或等于所述第四预定值时,若获取到空调器回风温度,则计算所述智能穿戴设备检测的温度值与所述回风温度之间的第三差值绝对值;
所述判定单元202,还用于若在预定佩戴检测次数内所述第三差值绝对值均大于第五预定值,则判定所述智能穿戴设备处于佩戴状态。
本实施例中,电容值DR≤4850,且第二差值绝对值B>1℃;或4850<DR≤5050,且B≤1℃时,若能获取到回风温度,则可以计算所述智能穿戴设备检测的温度值Tp2与所述回风温度T1之间的第三差值绝对值C=
|Tp2- T1|,并根据第三差值绝对值与第五预定值如2℃的大小关系,进行判断:
若在预定佩戴检测次数内,第三差值绝对值C均满足C>2℃,则可以判定智能穿戴设备处于佩戴状态;反之,若C≤2℃,则表明此时检测的数据可能有误,需要重新获取各个参数值,再次进行判断。
可以理解的是,此时,由于DR是否4850<DR≤5050,以及B= |Tp1-
Tp2|是否满足B>1℃的条件已经不能准确判断出智能穿戴设备的状态,因此,可以结合皮肤温度传感器检测的Tp2与回风温度T1的大小进行比较而进行判断,因此,此处智能穿戴设备检测的温度值即为Tp2。
应当理解的是,以上的具体数值仅用于方便理解方案,并不起限定作用。
在一实施例中,本发明还提供一种空调器100,如图14所示,在一实施例中,所述空调器100包括如上所述的检测装置1,所述检测装置1用于获取智能穿戴设备检测的温度值以及所述智能穿戴设备与用户皮肤之间接触产生的电容值,若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态。
以上仅为本发明的优选实施例,并非因此限制本发明的专利范围,凡是利用本发明说明书及附图内容所作的等效结构或等效流程变换,或直接或间接运用在其他相关的技术领域,均同理包括在本发明的专利保护范围内。
Claims (20)
- 一种智能穿戴设备的穿戴状态检测方法,其特征在于,所述智能穿戴设备的穿戴状态检测方法包括以下步骤:获取智能穿戴设备检测的温度值以及所述智能穿戴设备与用户皮肤之间接触产生的电容值;若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态。
- 如权利要求1所述的智能穿戴设备的穿戴状态检测方法,其特征在于,所述若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态的步骤包括:若所述电容值小于或等于第一预定值,则判断所述电容值是否在预定时间内均大于第二预定值且小于或等于所述第一预定值;若是,则判断所述智能穿戴设备检测的温度值是否大于第三预定值;若在预定佩戴检测次数内所述温度值均大于第三预定值,则判定所述智能穿戴设备处于佩戴状态。
- 如权利要求2所述的智能穿戴设备的穿戴状态检测方法,其特征在于,所述断所述智能穿戴设备检测的温度值是否大于第三预定值的步骤之后还包括:若在预定佩戴检测次数内所述智能穿戴设备检测的温度值均小于或等于所述第三预定值,则判定所述智能穿戴设备处于未佩戴状态。
- 如权利要求2所述的智能穿戴设备的穿戴状态检测方法,其特征在于,所述判断所述电容值是否在预定时间内均大于第二预定值且小于或等于所述第一预定值的步骤之后还包括:若在预定佩戴检测次数内所述电容值小于或等于所述第二预定值,则判定所述智能穿戴设备处于未佩戴状态。
- 如权利要求2所述的智能穿戴设备的穿戴状态检测方法,其特征在于,所述判断所述电容值是否在预定时间内均大于第二预定值且小于或等于所述第一预定值的步骤之后还包括:在获取到空调器回风温度时,若判定所述电容值在预定时间内均大于第二预定值且小于或等于所述第一预定值,则计算所述智能穿戴设备检测的温度值与所述回风温度之间的第一差值绝对值;在所述第一差值绝对值大于第四预定值时,判定所述智能穿戴设备处于佩戴状态。
- 如权利要求 2所述的智能穿戴设备的穿戴状态检测方法,其特征在于,所述智能穿戴设备检测的温度值包括空气温度以及皮肤温度,所述智能穿戴设备的穿戴状态检测方法的步骤还包括:在获取到所述智能穿戴设备检测的空气温度以及皮肤温度时,计算所述空气温度和皮肤温度之间的第二差值绝对值;在所述电容值小于或等于所述第一预定值时,判断所述电容值是否大于第二预定值且小于或等于所述第一预定值,同时判断所述第二差值绝对值是否大于第四预定值;若是,则在预定佩戴检测次数内若所述温度值均大于第三预定值,则判定所述智能穿戴设备处于佩戴状态。
- 如权利要求6所述的智能穿戴设备的穿戴状态检测方法,其特征在于,所述判断所述电容值是否大于第二预定值且小于或等于所述第一预定值,同时判断所述第二差值绝对值大于第四预定值的步骤之后还包括:若在预定佩戴检测次数内所述电容值小于或等于所述第二预定值,且所述第二差值绝对值小于或等于第四预定值,则判定所述智能穿戴设备处于未佩戴状态。
- 如权利要求6所述的智能穿戴设备的穿戴状态检测方法,其特征在于,所述判断所述电容值是否大于第二预定值且小于或等于所述第一预定值,同时判断所述第二差值绝对值大于第四预定值的步骤之后还包括:在所述电容值小于或等于所述第二预定值,且所述第二差值绝对值大于所述第四预定值;或所述电容值大于第二预定值且小于或等于所述第一预定值,同时所述第二差值绝对值小于或等于所述第四预定值时,重新获取所述智能穿戴设备检测的空气温度以及皮肤温度。
- 如权利要求6所述的智能穿戴设备的穿戴状态检测方法,其特征在于,所述判断所述电容值是否大于第二预定值且小于或等于所述第一预定值,同时判断所述第二差值绝对值大于第四预定值的步骤之后还包括:在所述电容值小于或等于所述第二预定值,且所述第二差值绝对值大于所述第四预定值;或所述电容值大于第二预定值且小于或等于所述第一预定值,同时所述第二差值绝对值小于或等于所述第四预定值时,若获取到空调器回风温度,则计算所述智能穿戴设备检测的温度值与所述回风温度之间的第三差值绝对值;若在预定佩戴检测次数内所述第三差值绝对值均大于第五预定值,则判定所述智能穿戴设备处于佩戴状态。
- 如权利要求1所述的智能穿戴设备的穿戴状态检测方法,其特征在于,所述获取智能穿戴设备检测的温度值以及所述智能穿戴设备与用户皮肤之间接触产生的电容值的步骤之后还包括:当在预定佩戴检测次数内所述电容值均大于第一预定值时,判定所述智能穿戴设备处于佩戴状态。
- 一种检测装置,其特征在于,所述检测装置包括:获取模块,用于获取智能穿戴设备检测的温度值以及所述智能穿戴设备与用户皮肤之间接触产生的电容值;判定模块,用于若在预定佩戴检测次数内所述温度值以及所述电容值均满足预设条件,则判定所述智能穿戴设备处于佩戴状态。
- 如权利要求11所述的检测装置,其特征在于,所述判定模块包括:判断单元,用于若所述电容值小于或等于第一预定值,则判断所述电容值是否在预定时间内均大于第二预定值且小于或等于所述第一预定值;所述判断单元,还用于若是,则判断所述智能穿戴设备检测的温度值是否大于第三预定值;判定单元,用于若在预定佩戴检测次数内所述温度值均大于第三预定值,则判定所述智能穿戴设备处于佩戴状态。
- 如权利要求12所述的检测装置,其特征在于,所述判定单元还用于:若在预定佩戴检测次数内所述智能穿戴设备检测的温度值均小于或等于所述第三预定值,则判定所述智能穿戴设备处于未佩戴状态。
- 如权利要求12所述的检测装置,其特征在于,所述判定单元还用于:若在预定佩戴检测次数内所述电容值小于或等于所述第二预定值,则判定所述智能穿戴设备处于未佩戴状态。
- 如权利要求12所述的检测装置,其特征在于,所述判定模块还包括:计算单元,用于在获取到空调器回风温度时,若判定所述电容值在预定时间内均大于第二预定值且小于或等于所述第一预定值,则计算所述智能穿戴设备检测的温度值与所述回风温度之间的第一差值绝对值;所述判定单元,还用于在所述第一差值绝对值大于第四预定值时,判定所述智能穿戴设备处于佩戴状态。
- 如权利要求12所述的检测装置,其特征在于,所述智能穿戴设备检测的温度值包括空气温度以及皮肤温度,所述判定模块还包括:计算单元,用于在获取到所述智能穿戴设备检测的空气温度以及皮肤温度时,计算所述空气温度和皮肤温度之间的第二差值绝对值;所述判断单元,还用于在所述电容值小于或等于所述第一预定值时,判断所述电容值是否大于第二预定值且小于或等于所述第一预定值,同时判断所述第二差值绝对值是否大于第四预定值;所述判定单元,还用于若是,则在预定佩戴检测次数内若所述温度值均大于第三预定值,则判定所述智能穿戴设备处于佩戴状态。
- 如权利要求16所述的检测装置,其特征在于,所述判定单元还用于:若在预定佩戴检测次数内所述电容值小于或等于所述第二预定值,且所述第二差值绝对值小于或等于第四预定值,则判定所述智能穿戴设备处于未佩戴状态。
- 如权利要求16所述的检测装置,其特征在于,所述检测装置还包括:获取模块,用于在所述电容值小于或等于所述第二预定值,且所述第二差值绝对值大于所述第四预定值;或所述电容值大于第二预定值且小于或等于所述第一预定值,同时所述第二差值绝对值小于或等于所述第四预定值时,重新获取所述智能穿戴设备检测的空气温度以及皮肤温度。
- 如权利要求16所述的检测装置,其特征在于,所述计算单元还用于:在所述电容值小于或等于所述第二预定值,且所述第二差值绝对值大于所述第四预定值;或所述电容值大于第二预定值且小于或等于所述第一预定值,同时所述第二差值绝对值小于或等于所述第四预定值时,若获取到空调器回风温度,则计算所述智能穿戴设备检测的温度值与所述回风温度之间的第三差值绝对值;所述判定单元,还用于若在预定佩戴检测次数内所述第三差值绝对值均大于第五预定值,则判定所述智能穿戴设备处于佩戴状态。
- 一种空调器,其特征在于,所述空调器包括如权利要求11至19中任一项所述的检测装置。
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| CN115278504A (zh) * | 2022-08-29 | 2022-11-01 | 深圳市飞科笛系统开发有限公司 | 耳机佩戴状态检测方法、装置和耳机 |
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| CN106524408B (zh) * | 2016-10-28 | 2019-07-19 | 美的集团武汉制冷设备有限公司 | 智能穿戴设备的穿戴状态检测方法及检测装置、空调器 |
| WO2018176348A1 (zh) * | 2017-03-30 | 2018-10-04 | 深圳市汇顶科技股份有限公司 | 可穿戴设备、佩戴质量检测方法及装置 |
| CN108695927A (zh) * | 2018-05-28 | 2018-10-23 | 深圳市沃特沃德股份有限公司 | 降低电池充电功耗的方法及装置 |
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| CN110114738B (zh) * | 2019-03-25 | 2020-12-01 | 深圳市汇顶科技股份有限公司 | 可穿戴设备、佩戴检测方法及存储介质 |
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| CN113397518A (zh) * | 2021-06-30 | 2021-09-17 | 杭州思立普科技有限公司 | 智能穿戴设备及佩戴检测方法 |
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| CN117617897A (zh) * | 2022-08-16 | 2024-03-01 | 华为技术有限公司 | 佩戴状态检测方法、智能穿戴设备和计算机可读存储介质 |
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