Smart wear system and control method of smart wear system

By integrating a bone conduction sensor, pressure sensor, and microphone into a smart ring, and combining this with a processor to cancel out noise, the effects of skin color, sweat, and posture on heart rate detection are eliminated, resulting in more accurate heart rate monitoring.

CN120859536BActive Publication Date: 2026-01-23GOERTEK INC
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Patent Information

Application Number
CN202511405421.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-09-29
Publication Date
2026-01-23
Estimated Expiration
2045-09-29

AI Technical Summary

Technical Problem

Existing smart rings are easily affected by skin color, sweat on the body surface, and the posture of the person being tested when detecting heart rate, resulting in inconsistent data accuracy.

Method used

The system uses a bone conduction sensor to collect signals at a location close to the heart, and combines it with a pressure sensor and a microphone. The processor then uploads the signals within a preset pressure range to cancel out ambient noise and achieve accurate heart rate detection.

Benefits of technology

Within a suitable pressure range, the bone conduction sensor can accurately collect heart rate signals, reducing the influence of skin color, sweat, and posture, thus improving detection accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses an intelligent wearing system and a control method thereof, and relates to the technical field of wearable devices. The intelligent wearing system comprises a first intelligent hand wearing device, wherein the first intelligent hand wearing device comprises a pressure sensor, a bone voiceprint sensor, a first processor and a first communication module. The bone voiceprint sensor is arranged on the outer surface of the first intelligent hand wearing device and is used for collecting a bone voiceprint signal representing a heart rate when being attached to a heart position and sending the bone voiceprint signal to the first processor. The pressure sensor is used for detecting a pressure value at the bone voiceprint sensor and sending the pressure value to the first processor. The first processor is used for uploading the bone voiceprint signal to a terminal device in communication connection with the intelligent wearing system through the first communication module when the pressure value is within a preset pressure value range. When the first intelligent hand wearing device is an intelligent ring, the heart rate detection can be carried out without being affected by skin color, body sweat and a detection posture.
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Description

Technical Field

[0001] This application relates to the field of wearable technology, and more specifically, to an intelligent wearable system and a control method for the intelligent wearable system. Background Technology

[0002] Currently, smart rings are being used more and more widely. These rings are equipped with various sensors, allowing for real-time monitoring of various health indicators simply by being worn. For example, a smart ring may contain a photoelectric pulse sensor that can monitor the user's heart rate in real time.

[0003] However, for photoelectric pulse sensors, this type of sensor is affected by skin color, sweat on the body surface, and detection posture, which causes different users to have different data when wearing the same smart ring.

[0004] Therefore, a smart ring that can detect heart rate without being affected by skin color, sweat on the body surface, or the detection posture is urgently needed. Summary of the Invention

[0005] One objective of this application is to provide a new technical solution for a smart wearable system.

[0006] According to a first aspect of this application, a smart wearable system is provided, comprising: a first smart hand wearable device, the first smart hand wearable device including: a pressure sensor, a bone conduction sensor, a first processor, and a first communication module, wherein:

[0007] The bone voiceprint sensor is disposed on the outer surface of the first smart wearable hand device and is used to collect bone voiceprint signals representing heart rate when it is in contact with the heart, and to send the bone voiceprint signals to the first processor.

[0008] The pressure sensor is used to detect the pressure value at the bone voiceprint sensor and send the pressure value to the first processor;

[0009] The first processor is used to upload the bone conduction signal to a terminal device that is communicatively connected to the smart wearable system via the first communication module when the pressure value is within a preset pressure value range.

[0010] Optionally, the first smart wearable device further includes: a first prompting module connected to the first processor;

[0011] The first processor is specifically used to output a first prompt message through the first prompt module to prompt adjustment of the pressure of the bone conduction sensor when the pressure value is outside the preset pressure value range.

[0012] Optionally, the first smart wearable device further includes: a microphone for collecting ambient audio signals and sending the ambient audio signals to the first processor;

[0013] The first processor is configured to, when the pressure value is within the preset pressure value range, cancel the environmental noise in the bone voiceprint signal according to the environmental audio signal to obtain a canceled bone voiceprint signal, and upload the canceled bone voiceprint signal to a terminal device that is communicatively connected to the smart wearable system through the first communication module.

[0014] Alternatively, the first processor may, when the pressure value is within the preset pressure value range, upload the ambient audio signal and the bone conduction signal to the terminal device via the first communication module.

[0015] Optionally, the smart wearable system further includes a second smart hand wearable device, wherein the first smart hand wearable device and the second smart hand wearable device are used to be worn on different sides of the hand;

[0016] The first smart wearable hand device further includes at least one first ECG electrode. For any one of the first ECG electrodes, it is disposed on the inner surface of the first smart wearable hand device and connected to the first processor, for collecting the first ECG signal and sending the first ECG signal to the first processor.

[0017] The second smart wearable hand device includes a second processor, a second communication module, and at least one second ECG electrode. For any one of the second ECG electrodes, it is disposed on the inner surface of the second smart wearable hand device and connected to the second processor, for collecting the second ECG signal and sending the second ECG signal to the second processor.

[0018] The first processor is used to upload the first ECG signal to the terminal device through the first communication module, and the second processor is used to upload the second ECG signal to the terminal device through the second communication module.

[0019] Optionally, the first smart wearable device includes two first ECG electrodes, which are arranged opposite to each other.

[0020] And / or, the second smart wearable device includes two second ECG electrodes, which are arranged opposite to each other.

[0021] Optionally, the bone voiceprint sensor is located between the two first ECG electrodes.

[0022] Optionally, in the assembled state, the first smart hand wearable device and the second smart hand wearable device are axially connected as one unit.

[0023] Optionally, the first smart wearable device further includes: a second prompt module connected to the first processor, wherein the first processor is configured to output a second prompt message through the second prompt module when it is determined that the first ECG signal is unstable, and to upload the first ECG signal to the terminal device through the first communication module when it is determined that the first ECG signal is stable;

[0024] Furthermore, the second smart wearable device also includes: a third prompt module connected to the second processor, wherein the second processor is configured to output a third prompt message through the third prompt module when it is determined that the second ECG signal is unstable, and to upload the second ECG signal to the terminal device through the second communication module when it is determined that the second ECG signal is stable.

[0025] According to a second aspect of this application, a control method for a smart wearable system is provided, the method being applied to a first smart hand-wearing device in the smart wearable system as described in any of the first aspects, comprising:

[0026] Acquire the bone voiceprint signal representing heart rate collected by the bone voiceprint sensor and the pressure value at the bone voiceprint sensor collected by the pressure sensor;

[0027] When the pressure value is within the preset pressure value range, the bone conduction signal is uploaded to the terminal device that is connected to the smart wearable system via the first communication module.

[0028] Optionally, when the pressure value is within a preset pressure value range, the bone conduction signal is uploaded to a terminal device communicatively connected to the smart wearable system via the first communication module, including:

[0029] When the pressure value is within the preset pressure value range, the environmental noise in the bone voiceprint signal is canceled out based on the environmental audio signal collected by the microphone to obtain the canceled bone voiceprint signal.

[0030] The canceled bone voiceprint signal is uploaded to a terminal device that is connected to the smart wearable system via the first communication module.

[0031] Alternatively, if the pressure value is within the preset pressure value range, the ambient audio signal and the bone conduction signal are uploaded to the terminal device via the first communication module.

[0032] This application provides a smart wearable system, including: a first smart hand wearable device, comprising: a pressure sensor, a bone conduction sensor, a first processor, and a first communication module, wherein: the bone conduction sensor is disposed on the outer surface of the first smart hand wearable device, used to collect bone conduction signals representing heart rate when in contact with the heart, and to send the bone conduction signals to the first processor; the pressure sensor is used to detect the pressure value at the bone conduction sensor, and to send the pressure value to the first processor; the first processor is used to upload the bone conduction signals to a terminal device communicatively connected to the smart wearable system via the first communication module when the pressure value is within a preset pressure range. When the first smart hand wearable device is a smart ring, the first smart hand wearable device can detect heart rate without being affected by skin color, sweat on the skin, or the detection posture.

[0033] Other features and advantages of this application will become clear from the following detailed description of exemplary embodiments with reference to the accompanying drawings. Attached Figure Description

[0034] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments of the present application and, together with their description, serve to explain the principles of the present application.

[0035] Figure 1 This is a schematic diagram of the structure of a smart wearable system provided in this application. Figure 1 ;

[0036] Figure 2 This is a schematic diagram of the structure of a smart wearable system provided in this application. Figure 2 ;

[0037] Figure 3 This is a schematic diagram of the structure of a smart wearable system provided in this application. Figure 3 ;

[0038] Figure 4 This is a flowchart illustrating a control method for an intelligent wearable system provided in this application;

[0039] Figure 5 This is a schematic diagram of the structure of a control device for a smart wearable system provided in this application. Detailed Implementation

[0040] Various exemplary embodiments of this application will now be described in detail with reference to the accompanying drawings. It should be noted that, unless otherwise specifically stated, the relative arrangement, numerical expressions, and values ​​of the components and steps set forth in these embodiments do not limit the scope of this application.

[0041] The following description of at least one exemplary embodiment is merely illustrative and is in no way intended to limit the scope of this application and its application or use.

[0042] Techniques, methods, and equipment known to those skilled in the art may not be discussed in detail, but where appropriate, such techniques, methods, and equipment should be considered part of the specification.

[0043] In all the examples shown and discussed herein, any specific values ​​should be interpreted as merely exemplary and not as limitations. Therefore, other examples of exemplary embodiments may have different values.

[0044] It should be noted that similar labels and letters in the following figures indicate similar items; therefore, once an item is defined in one figure, it does not need to be discussed further in subsequent figures.

[0045] like Figure 1 and Figure 2 As shown, this application provides a smart wearable system, which includes a first smart hand wearable device 10. In one embodiment of this application, the first smart hand wearable device 10 is a smart ring or a smart bracelet.

[0046] The first intelligent wearable hand device 10 includes: a pressure sensor 101, a bone conduction sensor (Voice Pick-up Sensor, VPU) 102, a first processor 103, and a first communication module 104, wherein:

[0047] The bone voiceprint sensor 102 is disposed on the outer surface of the first smart hand wearable device 10, and is used to collect bone voiceprint signals representing heart rate when it is in contact with the heart, and send the bone voiceprint signals to the first processor 103.

[0048] The pressure sensor 101 is used to detect the pressure value at the bone voiceprint sensor 102 and send the pressure value to the first processor 103;

[0049] The first processor 103 is used to upload bone conduction signals to a terminal device that is connected to the smart wearable system via the first communication module 104 when the pressure value is within a preset pressure value range.

[0050] In this embodiment, the outer surface of the first smart hand wearable device 10 specifically refers to the surface opposite to the surface that comes into contact with the wearer's skin after the first smart hand wearable device 10 is worn by the wearer's hand.

[0051] When the first smart wearable device 10 is worn by a wearer and the bone conduction sensor 102 is positioned against the heart, the bone conduction sensor 102 can collect the vibrations of the heartbeat, obtaining a bone conduction signal characterizing the heart rate. Further, the bone conduction sensor 102 sends the collected bone conduction signal to the first processor 103. In one embodiment of this application, to help the wearer clearly identify the position of the bone conduction sensor 102 in the first smart wearable device 10, a mark can be drawn on the outer surface of the location of the bone conduction sensor 102 in the first smart wearable device 10, so that the wearer can accurately identify the position of the bone conduction sensor 102 and ensure it is properly positioned against the heart.

[0052] Furthermore, when the bone voiceprint sensor 102 is attached to the heart, the pressure sensor 101 detects the pressure at the bone voiceprint sensor 102 and sends the pressure value to the first processor 103.

[0053] In one embodiment of this application, such as Figure 2 As shown, the pressure sensor 101 is positioned on the side of the bone voiceprint sensor 102 furthest from the heart. In this way, all pressure applied to the bone voiceprint sensor 102 is applied to the pressure sensor 101, enabling accurate detection of the applied pressure to the bone voiceprint sensor 102.

[0054] Upon receiving the bone conduction signal from the bone conduction sensor 102 and the pressure value from the pressure sensor 101, the first processor 103 determines the accuracy of the bone conduction signal based on the pressure value. Specifically, if the pressure value is within a preset pressure range, it determines that the bone conduction information collected by the bone conduction sensor 102 is accurate. At this point, the bone conduction information is uploaded to a terminal device communicatively connected to the first smart wearable device 10 via the first communication module 104, so that the terminal device can determine the wearer's heart rate based on the bone conduction information. The preset pressure range is the pressure applied to the bone conduction sensor 102 when it can accurately collect the bone conduction signal reflecting the heart rate; this range can be set based on experience or implementation.

[0055] In this application, the first smart wearable device 10 collects bone conduction signals representing heart rate at the heart location using a bone conduction sensor 102. Since the bone conduction sensor 102 relies on the vibration of the heartbeat, it is independent of the wearer's skin color, body sweat, and detection posture. Furthermore, the accurate collection of bone conduction signals by the bone conduction sensor 102 is achieved based on the pressure value collected by the pressure sensor 101. Therefore, when the first smart wearable device 10 is a smart ring, it can detect heart rate without being affected by skin color, body sweat, or detection posture.

[0056] This application provides a smart wearable system, including: a first smart hand wearable device, comprising: a pressure sensor, a bone conduction sensor, a first processor, and a first communication module, wherein: the bone conduction sensor is disposed on the outer surface of the first smart hand wearable device, used to collect bone conduction signals representing heart rate when in contact with the heart, and to send the bone conduction signals to the first processor; the pressure sensor is used to detect the pressure value at the bone conduction sensor, and to send the pressure value to the first processor; the first processor is used to upload the bone conduction signals to a terminal device communicatively connected to the smart wearable system via the first communication module when the pressure value is within a preset pressure range. When the first smart hand wearable device is a smart ring, the first smart hand wearable device can detect heart rate without being affected by skin color, sweat on the skin, or the detection posture.

[0057] In order to allow the wearer to promptly and intuitively perceive that the pressure value is outside the preset pressure value range, in one embodiment of this application, such as Figure 1 As shown, the first smart wearable device 10 in the smart wearable system provided in this application further includes: a first prompting module 105, which is connected to the first processor 103;

[0058] The first processor 103 is specifically used to output a first prompt message through the first prompt module 105 to prompt adjustment of the pressure of the bone conduction sensor 102 when the pressure value is outside the preset pressure value range.

[0059] If the pressure value is outside the preset pressure range, it is determined that the bone voiceprint information collected by the bone voiceprint sensor 102 is inaccurate. At this time, the first prompt module 105 outputs a first prompt message prompting adjustment of the pressure of the bone voiceprint sensor 102. Specifically, if the pressure value is less than the lower limit of the preset pressure range, a first prompt message prompting to increase the pressure of the bone voiceprint sensor 102 is output; if the pressure value is greater than the upper limit of the preset pressure range, a first prompt message prompting to decrease the pressure of the bone voiceprint sensor is output.

[0060] In one example, the first prompt module 105 is a motor. This motor has two vibration levels: a high vibration level and a low vibration level. When the first prompt message specifically increases the pressure of the bone conduction sensor 102, the first processor 103 controls the first prompt module 105 to vibrate at the high vibration level. Conversely, when the first prompt message specifically decreases the pressure of the bone conduction sensor 102, the first processor 103 controls the first prompt module 105 to vibrate at the low vibration level.

[0061] Of course, the first processor 103 can send the first prompt information to the terminal device through the first communication module 104 therein, and the wearer can adjust the pressure applied to the bone voiceprint sensor 102 according to the first prompt information displayed on the terminal device, such as reducing or increasing the pressure of the bone voiceprint sensor 102.

[0062] In one embodiment of this application, such as Figure 1 and Figure 2 As shown, the first smart wearable device 10 also includes a microphone 106 for collecting ambient audio signals and sending the ambient audio signals to the first processor 103;

[0063] The first processor 103 is used to cancel the environmental noise in the bone voiceprint signal according to the environmental audio signal when the pressure value is within the preset pressure value range, to obtain the canceled bone voiceprint signal, and to upload the canceled bone voiceprint signal to the terminal device that is connected to the smart wearable system through the first communication module 104.

[0064] Alternatively, the first processor 103 is used to upload ambient audio signals and bone conduction signals to the terminal device via the first communication module 104 when the pressure value is within a preset pressure value range.

[0065] In this embodiment, since environmental sounds, i.e., environmental noise, can also cause vibrations, environmental noise can interfere with the bone voiceprint signal collected by the bone voiceprint sensor 102. To solve this problem, a microphone 106 is provided in the first smart wearable device 10 to collect environmental noise, obtain environmental audio signals, and send the collected environmental audio signals to the first processor 103.

[0066] In order for the microphone 106 to accurately collect ambient noise, the microphone 106 can be placed near the bone voiceprint sensor 102.

[0067] After receiving the ambient audio signal, the first processor 103, provided the pressure value is within a preset pressure range, performs phase inversion processing on the ambient audio signal to obtain an inverted ambient audio signal. Further, the inverted ambient audio signal is synthesized with the bone conduction signal, thus canceling out environmental noise in the bone conduction signal. Further, the canceled bone conduction signal is uploaded to a terminal device connected to the smart wearable system via the first communication module 104. This allows the accurate uploading of the canceled bone conduction signal, reflecting the heart rate, to the terminal device connected to the smart wearable system, where the terminal device can determine the wearer's heart rate.

[0068] Alternatively, to avoid excessive power consumption of the first smart wearable device, the first processor 103 is used to upload the ambient audio signal and bone conduction signal to the terminal device when the pressure value is within a preset pressure value range, so that the terminal device can cancel the ambient noise in the bone conduction signal through the ambient audio signal.

[0069] In one embodiment of this application, such as Figure 3 As shown, the smart wearable system of this application also includes a second smart hand wearable device 20, and the first smart hand wearable device 10 and the second smart hand wearable device 20 are used to be worn on different sides of the hand;

[0070] In addition, the first smart wearable hand device 10 also includes at least one first ECG (Electrocardiogram) electrode 107. For any one first ECG electrode 107, it is disposed on the inner surface of the first smart wearable hand device 10 and connected to the first processor 103 for acquiring the first ECG signal and sending the first ECG signal to the first processor 103.

[0071] The second smart wearable device 20 includes a second processor 202, a second communication module 203 and at least one second ECG electrode 201. Each second ECG electrode 201 is disposed on the inner surface of the second smart wearable device 20 and connected to the second processor 202 for collecting second ECG signals and sending the second ECG signals to the second processor 202.

[0072] The first processor 103 is used to upload the first ECG signal to the terminal device through the first communication module 104, and the second processor 202 is used to upload the second ECG signal to the terminal device through the second communication module 203.

[0073] In this embodiment, the inner surfaces of both the first smart hand wearable device 10 and the second smart hand wearable device 20 are surfaces that come into contact with the wearer's hand skin.

[0074] When the first smart hand wearable device 10 and the second smart hand wearable device 20 are worn on different sides of the wearer's hand, at least one first ECG electrode 107 and at least one second ECG electrode 201 are in contact with the wearer's different sides of the hand. This allows for the acquisition of ECG signals characterizing the wearer's electrocardiogram based on the principle of a single lead. In this embodiment, the ECG signal acquired by the first ECG electrode 107 is recorded as the first ECG signal, and the ECG signal acquired by the second ECG electrode 201 is recorded as the second ECG signal.

[0075] After at least one first ECG electrode 107 acquires a first ECG signal, it sends the first ECG signal to a first processor 103. The first processor 103 then sends the first ECG signal to a terminal device via a first communication module 104. Similarly, after at least one second ECG electrode 201 acquires a second ECG signal, it sends the second ECG signal to a second processor 202. The second processor 202 then sends the second ECG signal to the terminal device via a second communication module 203. Based on this, the terminal device outputs the wearer's electrocardiogram (ECG) according to the first and second ECG signals.

[0076] In this embodiment, the wearer can conveniently measure their own electrocardiogram using the smart wearable system provided in this application without the constraint of keeping their hands in a fixed position.

[0077] In one embodiment of this application, the first smart wearable device 10 includes two first ECG electrodes 107, which are arranged opposite to each other.

[0078] And / or, the second smart hand wearable device 20 includes two second ECG electrodes 201, which are arranged opposite to each other.

[0079] In this embodiment, the first smart wearable device 10 is provided with two first ECG electrodes 107, which are arranged opposite to each other. This ensures sufficient contact between the first ECG electrodes 107 and the wearer, while avoiding the problem of increasing the size of the first smart wearable device due to too many first ECG electrodes 107. Similarly, the second smart wearable device 20 is also configured in this way.

[0080] Based on the above embodiments, such as Figure 2 As shown, the bone voiceprint sensor 102 is located between the two first ECG electrodes 107. This ensures that the distance between the bone voiceprint sensor 102 and the two first ECG electrodes 107 is relatively large, avoiding signal interference among the three and facilitating heat dissipation.

[0081] In one embodiment of this application, in the assembled state, the first smart hand wearable device 10 and the second smart hand wearable device 20 are axially connected as one unit.

[0082] In one embodiment of this application, magnets are provided in both the first smart wearable device 10 and the second smart wearable device 20, allowing them to be connected as a single unit. Of course, other methods can also be used to connect the first smart wearable device 10 and the second smart wearable device 20, such as using a snap-fit ​​mechanism; this application does not limit this method. It should be noted that when the first smart wearable device 10 and the second smart wearable device 20 are connected as a single unit, the smart wearable system is in an assembled state.

[0083] In this embodiment, the first smart hand wearable device 10 and the second smart hand wearable device 20 can be assembled together along the axial direction. In this way, when the wearer does not need to perform electrocardiogram testing, the first smart hand wearable device 10 and the second smart hand wearable device 20 can be worn in the traditional way.

[0084] When an electrocardiogram (ECG) test is needed, the wearer can detach the first smart wearable device 10 and the second smart wearable device 20 and wear them on opposite hands. It should be noted that since the first smart wearable device 10 and the second smart wearable device 20 are in contact before detachment, they can perform reference potential calibration. Therefore, after detachment, the first smart wearable device 10 and the second smart wearable device 20 can accurately acquire the first and second ECG signals.

[0085] In one embodiment of this application, such as Figure 3 As shown, the first smart wearable device 10 provided in this application further includes: a second prompting module 108, which is connected to the first processor 103;

[0086] The first processor 103 is used to output a second prompt message through the second prompt module 108 when it is determined that the first ECG signal is unstable, and to upload the first ECG signal to the terminal device through the first communication module 104 when it is determined that the first ECG signal is stable.

[0087] In addition, the second smart wearable device 20 also includes: a third prompt module 204, connected to the second processor 202, the second processor 202 being used to output a third prompt message through the third prompt module 204 when it is determined that the second ECG signal is unstable, and to upload the second ECG signal to the terminal device through the second communication module 203 when it is determined that the second ECG signal is stable.

[0088] In this embodiment, upon receiving the first ECG signal from the first ECG electrode 107, the first processor 103 determines whether the first ECG signal is stable. If the first ECG signal is determined to be unstable, a second prompt message is output through the second prompt module 108 to prompt the wearer to adjust the wearing method of the first smart wearable device 10. Alternatively, the first processor 103 can also upload the first ECG signal to a terminal device via the first communication module 104, where the terminal device determines whether the first ECG signal is stable. If the terminal device determines that the first ECG signal is unstable, it sends the second prompt message to the first processor 103 via the first communication module 104, and the first processor 103 outputs the second prompt message through the second prompt module 108. Conversely, if the first ECG signal is determined to be stable, it uploads the first ECG signal to the terminal device.

[0089] Similarly, upon receiving the second ECG signal from the second ECG electrode 201, the second processor 202 determines whether the second ECG signal is stable. If the second ECG signal is determined to be unstable, a third prompt message is output through the third prompt module 204 to prompt the wearer to adjust the wearing method of the second smart wearable device 20. Alternatively, the second processor 202 can also upload the second ECG signal to the terminal device via the second communication module 203, where the terminal device determines whether the second ECG signal is stable. If the terminal device determines that the second ECG signal is unstable, it sends a third prompt message to the second processor 202 via the second communication module 203, and the second processor 202 outputs the third prompt message through the third prompt module 204. Conversely, if the second ECG signal is determined to be stable, it uploads the second ECG signal to the terminal device.

[0090] The first processor 103 can determine whether the first ECG signal is stable based on parameters such as electromyographic noise reflected in the first ECG signal. Of course, other indicators can also be used to determine whether the first ECG signal is stable; this application does not limit this. Similarly, the second processor 202 can determine whether the second ECG signal is stable based on parameters such as electromyographic noise reflected in the second ECG signal. Of course, other indicators can also be used to determine whether the second ECG signal is stable; this application does not limit this.

[0091] This application also provides a control method for a smart wearable system, which is applied to a first smart hand-wearing device in any of the smart wearable systems provided in the above embodiments, such as... Figure 4 As shown, the method includes the following steps S410 and S420.

[0092] Step S410: Obtain the bone voiceprint signal representing heart rate collected by the bone voiceprint sensor and the pressure value at the bone voiceprint sensor collected by the pressure sensor.

[0093] Step S420: When the pressure value is within the preset pressure value range, the bone conduction signal is uploaded to the terminal device that is connected to the smart wearable system via the first communication module.

[0094] In one embodiment of this application, the control method of the smart wearable system provided in this application further includes the following step S430.

[0095] Step S430: When the pressure value is outside the preset pressure value range, the second prompt module outputs a first prompt message prompting the adjustment of the pressure of the bone conduction sensor.

[0096] In one embodiment of this application, step S430 is specifically implemented by steps S431 and S432, or by step S433.

[0097] Step S431: When the pressure value is within the preset pressure value range, the environmental noise in the bone voiceprint signal is canceled out based on the environmental audio signal collected by the microphone to obtain the canceled bone voiceprint signal.

[0098] Step S432: The canceled bone voiceprint signal is uploaded to the terminal device that is connected to the smart wearable system via the first communication module.

[0099] Step S433: When the pressure value is within the preset pressure value range, the ambient audio signal and the bone conduction signal are uploaded to the terminal device through the first communication module.

[0100] In one embodiment of this application, the control method of the smart wearable system provided in this application further includes the following step S440.

[0101] Step S440: The received first ECG signal is uploaded to the terminal device via the first communication module.

[0102] In one embodiment of this application, the control method of the smart wearable system provided in this application further includes the following step S450.

[0103] Step S450: If it is determined that the first ECG signal is unstable, the second prompt message is output through the second prompt module.

[0104] Furthermore, in this embodiment, step S440 is specifically implemented through the following step S441.

[0105] Step S441: If the first ECG signal is determined to be stable, the first ECG signal is uploaded to the terminal device through the first communication module.

[0106] This application also provides a control device 500 for a smart wearable system, which is applied to a first smart hand-wearing device in any of the smart wearable systems provided in the above embodiments, such as... Figure 5 As shown, it includes:

[0107] The acquisition module 510 is used to acquire the bone voiceprint signal representing heart rate collected by the bone voiceprint sensor and the pressure value at the bone voiceprint sensor collected by the pressure sensor.

[0108] The upload module 520 is used to upload the bone conduction signal to a terminal device that is connected to the smart wearable system via the first communication module when the pressure value is within a preset pressure value range.

[0109] In one embodiment of this application, the control device 500 of the smart wearable system provided in this application further includes:

[0110] The prompting module is used to output a first prompt message through the second prompting module to prompt adjustment of the pressure of the bone conduction sensor when the pressure value is outside the preset pressure value range.

[0111] In one embodiment of this application, the uploading module 520 is used to, when the pressure value is within the preset pressure value range, cancel the environmental noise in the bone voiceprint signal according to the environmental audio signal collected by the microphone to obtain a canceled bone voiceprint signal; and upload the canceled bone voiceprint signal to a terminal device that is communicatively connected to the smart wearable system through the first communication module.

[0112] Alternatively, the upload module 520 is used to upload the ambient audio signal and the bone conduction signal to the terminal device via the first communication module when the pressure value is within the preset pressure value range.

[0113] In one embodiment of this application, the upload module 520 is further configured to upload the received first ECG signal to the terminal device via the first communication module.

[0114] In one embodiment of this application, the prompting module is further configured to output a second prompting message through a second prompting module when it is determined that the first ECG signal is unstable.

[0115] Furthermore, in this embodiment, the upload module 520 is specifically used to upload the first ECG signal to the terminal device via the first communication module when it is determined that the first ECG signal is stable.

[0116] This application also provides another control method for a smart wearable system, which is applied to a second smart hand wearable device in any of the smart wearable systems provided in the above embodiments, and includes the following step S610.

[0117] Step S610: Upload the second ECG signal to the terminal device via the second communication module.

[0118] In one embodiment of this application, another control method for a smart wearable system provided by this application further includes the following step S620.

[0119] Step S620: If it is determined that the second ECG signal is unstable, a third prompt message is output through the third prompt module.

[0120] In this embodiment, step S610 is specifically implemented through step S511.

[0121] Step S611: If the second ECG signal is determined to be stable, the second ECG signal is uploaded to the terminal device through the second communication module.

[0122] This application also provides a computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements the method described in any of the above-described method embodiments.

[0123] This application may be a system, method, and / or computer program product. A computer program product may include a computer-readable storage medium having computer-readable program instructions loaded thereon for causing a processor to implement various aspects of this application.

[0124] Computer-readable storage media can be tangible devices capable of holding and storing instructions for use by an instruction execution device. Computer-readable storage media can be, for example—but not limited to—electrical storage devices, magnetic storage devices, optical storage devices, electromagnetic storage devices, semiconductor storage devices, or any suitable combination of the foregoing. More specific examples (a non-exhaustive list) of computer-readable storage media include: portable computer disks, hard disks, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), static random access memory (SRAM), portable compact disc read-only memory (CD-ROM), digital multifunction disc (DVD), memory sticks, floppy disks, mechanical encoding devices, such as punch cards or recessed protrusions storing instructions thereon, and any suitable combination of the foregoing. The computer-readable storage media used herein are not to be construed as transient signals themselves, such as radio waves or other freely propagating electromagnetic waves, electromagnetic waves propagating through waveguides or other transmission media (e.g., light pulses through fiber optic cables), or electrical signals transmitted through wires.

[0125] The computer-readable program instructions described herein can be downloaded from computer-readable storage media to various computing / processing devices, or downloaded via a network, such as the Internet, local area network, wide area network, and / or wireless network, to an external computer or external storage device. The network may include copper transmission cables, fiber optic transmission, wireless transmission, routers, firewalls, switches, gateway computers, and / or edge servers. A network adapter card or network interface in each computing / processing device receives the computer-readable program instructions from the network and forwards them to the computer-readable storage media in the respective computing / processing device.

[0126] The computer program instructions used to perform the operations of this application may be assembly instructions, instruction set architecture (ISA) instructions, machine instructions, machine-dependent instructions, microcode, firmware instructions, status setting data, or source code or object code written in any combination of one or more programming languages, including object-oriented programming languages ​​such as Smalltalk, C++, etc., and conventional procedural programming languages ​​such as the "C" language or similar programming languages. The computer-readable program instructions may be executed entirely on the user's computer, partially on the user's computer, as a standalone software package, partially on the user's computer and partially on a remote computer, or entirely on a remote computer or server. In cases involving a remote computer, the remote computer may be connected to the user's computer via any type of network—including a local area network (LAN) or a wide area network (WAN)—or may be connected to an external computer (e.g., via the Internet using an Internet service provider). In some embodiments, electronic circuits, such as programmable logic circuits, field-programmable gate arrays (FPGAs), or programmable logic arrays (PLAs), are personalized by utilizing the status information of the computer-readable program instructions. These electronic circuits can execute the computer-readable program instructions to implement various aspects of this application.

[0127] Various aspects of this application are described herein with reference to flowchart illustrations and / or block diagrams of methods, apparatus (systems), and computer program products according to embodiments of this application. It should be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer-readable program instructions.

[0128] These computer-readable program instructions can be provided to a processor of a general-purpose computer, a special-purpose computer, or other programmable data processing apparatus to produce a machine such that, when executed by the processor of the computer or other programmable data processing apparatus, they create means for implementing the functions / actions specified in one or more blocks of the flowchart and / or block diagram. These computer-readable program instructions can also be stored in a computer-readable storage medium that causes a computer, programmable data processing apparatus, and / or other device to operate in a particular manner; thus, the computer-readable medium storing the instructions comprises an article of manufacture that includes instructions for implementing aspects of the functions / actions specified in one or more blocks of the flowchart and / or block diagram.

[0129] Computer-readable program instructions may also be loaded onto a computer, other programmable data processing apparatus, or other device to cause a series of operational steps to be performed on the computer, other programmable data processing apparatus, or other device to produce a computer-implemented process, thereby causing the instructions executed on the computer, other programmable data processing apparatus, or other device to perform the functions / actions specified in one or more boxes of a flowchart and / or block diagram.

[0130] The flowcharts and block diagrams in the accompanying drawings illustrate the architecture, functionality, and operation of possible implementations of systems, methods, and computer program products according to various embodiments of this application. In this regard, each block in a flowchart or block diagram may represent a module, segment, or portion of an instruction containing one or more executable instructions for implementing a specified logical function. In some alternative implementations, the functions marked in the blocks may occur in a different order than those marked in the drawings. For example, two consecutive blocks may actually be executed substantially in parallel, and they may sometimes be executed in reverse order, depending on the functions involved. It should also be noted that each block in the block diagrams and / or flowcharts, and combinations of blocks in the block diagrams and / or flowcharts, can be implemented using a dedicated hardware-based system that performs the specified function or action, or using a combination of dedicated hardware and computer instructions. It will be well known to those skilled in the art that implementation in hardware, implementation in software, and implementation using a combination of software and hardware are equivalent.

[0131] The various embodiments of this application have been described above. These descriptions are exemplary and not exhaustive, nor are they limited to the disclosed embodiments. Many modifications and variations will be apparent to those skilled in the art without departing from the scope and spirit of the described embodiments. The terminology used herein is chosen to best explain the principles, practical applications, or technical improvements to the technology in the market, or to enable others skilled in the art to understand the embodiments disclosed herein. The scope of this application is defined by the appended claims.

Claims

1. A smart wearable system, characterized in that, include: A first intelligent wearable hand device, comprising: a pressure sensor, a bone conduction sensor, a first processor, and a first communication module, wherein: The bone voiceprint sensor is disposed on the outer surface of the first smart wearable hand device and is used to collect bone voiceprint signals representing heart rate when it is in contact with the heart, and to send the bone voiceprint signals to the first processor. The pressure sensor is used to detect the pressure value at the bone voiceprint sensor and send the pressure value to the first processor; The first processor is used to upload the bone voiceprint signal to a terminal device that is communicatively connected to the smart wearable system via the first communication module when the pressure value is within a preset pressure value range. The smart wearable system further includes a second smart hand wearable device, and the first smart hand wearable device and the second smart hand wearable device are used to be worn on different sides of the hand; The first smart wearable hand device further includes at least one first ECG electrode. For any one of the first ECG electrodes, it is disposed on the inner surface of the first smart wearable hand device and connected to the first processor, for collecting the first ECG signal and sending the first ECG signal to the first processor. The second smart wearable hand device includes a second processor, a second communication module, and at least one second ECG electrode. For any one of the second ECG electrodes, it is disposed on the inner surface of the second smart wearable hand device and connected to the second processor, for collecting the second ECG signal and sending the second ECG signal to the second processor. The first processor is used to upload the first ECG signal to the terminal device through the first communication module, and the second processor is used to upload the second ECG signal to the terminal device through the second communication module; The first smart wearable device further includes: a second prompt module connected to the first processor, wherein the first processor is used to output a second prompt message through the second prompt module when it is determined that the first ECG signal is unstable, and to upload the first ECG signal to the terminal device through the first communication module when it is determined that the first ECG signal is stable; Furthermore, the second smart wearable device also includes: a third prompt module connected to the second processor, wherein the second processor is configured to output a third prompt message through the third prompt module when it is determined that the second ECG signal is unstable, and to upload the second ECG signal to the terminal device through the second communication module when it is determined that the second ECG signal is stable.

2. The intelligent wearable system according to claim 1, characterized in that, The first smart wearable device further includes: a first prompting module, connected to the first processor; The first processor is specifically used to output a first prompt message through the first prompt module to prompt adjustment of the pressure of the bone conduction sensor when the pressure value is outside the preset pressure value range.

3. The intelligent wearable system according to claim 1, characterized in that, The first smart wearable device further includes: a microphone for collecting ambient audio signals and sending the ambient audio signals to the first processor; The first processor is configured to, when the pressure value is within the preset pressure value range, cancel the environmental noise in the bone voiceprint signal according to the environmental audio signal to obtain a canceled bone voiceprint signal, and upload the canceled bone voiceprint signal to a terminal device that is communicatively connected to the smart wearable system through the first communication module. Alternatively, the first processor may, when the pressure value is within the preset pressure value range, upload the ambient audio signal and the bone conduction signal to the terminal device via the first communication module.

4. The intelligent wearable system according to claim 1, characterized in that, The first smart wearable device includes two first ECG electrodes, which are arranged opposite to each other. And / or, the second smart wearable device includes two second ECG electrodes, which are arranged opposite to each other.

5. The intelligent wearable system according to claim 4, characterized in that, The bone conduction sensor is located between the two first ECG electrodes.

6. The intelligent wearable system according to claim 1, characterized in that, In the assembled state, the first smart hand wearable device and the second smart hand wearable device are connected as one unit in the axial direction.

7. A control method for an intelligent wearable system, characterized in that, The method is applied to a first smart hand-wearing device in a smart wearable system as described in any one of claims 1-6, comprising: Acquire the bone voiceprint signal representing heart rate collected by the bone voiceprint sensor and the pressure value at the bone voiceprint sensor collected by the pressure sensor; When the pressure value is within the preset pressure value range, the bone voiceprint signal is uploaded to the terminal device that is connected to the smart wearable system via the first communication module; The method further includes: uploading the received first ECG signal to the terminal device via a first communication module, and the second smart wearable device in the smart wearable system uploading the second ECG signal to the terminal device via a second communication module.

8. The method according to claim 7, characterized in that, When the pressure value is within a preset pressure value range, the bone conduction signal is uploaded to a terminal device communicatively connected to the smart wearable system via the first communication module, including: When the pressure value is within the preset pressure value range, the environmental noise in the bone voiceprint signal is canceled out based on the environmental audio signal collected by the microphone to obtain the canceled bone voiceprint signal. The canceled bone voiceprint signal is uploaded to a terminal device that is connected to the smart wearable system via the first communication module. Alternatively, if the pressure value is within the preset pressure value range, the ambient audio signal and the bone conduction signal are uploaded to the terminal device via the first communication module.

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