Intelligent wearable device, pairing control method and control device thereof and storage medium

By dividing smart wearable devices into master and slave devices and using a charging case for pairing and network control, the problems of insufficient wearing comfort and audio performance of smart glasses are solved, achieving efficient pairing and flexible use between devices and improving the user experience.

CN121968365APending Publication Date: 2026-05-01GEER TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
GEER TECH CO LTD
Filing Date
2024-10-29
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

Existing smart wearable devices suffer from poor wearing comfort and insufficient audio performance when working in multi-device collaboration. In particular, the placement of speakers on smart glasses results in heavy weight and limited open-back audio performance.

Method used

Smart wearable devices are divided into master devices and slave devices, which are paired and networked through a charging box. The MCU and user input operation components in the charging box are used to realize automatic pairing and networking between devices, reducing physical connections between devices and improving the flexibility and practicality of the devices.

Benefits of technology

It improves the wearing comfort and audio experience of smart wearable devices, enhances the flexibility and user convenience between devices, simplifies the operation process, and improves the pairing efficiency and user experience between devices.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses intelligent wearable equipment, a pairing control method and device thereof and a storage medium. Relates to the technical field of wearable devices, the intelligent wearable device comprises a master device and a slave device, in the pairing control method of the intelligent wearable device, firstly, when a mode setting trigger instruction is received, a mode setting type is determined according to the mode setting trigger instruction; when the mode setting type is determined to be a pairing mode, the master device and the slave device are controlled to be paired; and when the mode setting type is determined to be a network distribution mode, controlling the main equipment to perform network distribution. The invention aims to improve the user use convenience and user experience of the intelligent wearable device.
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Description

Technical Field

[0001] This invention relates to the field of wearable device technology, and in particular to a smart wearable device and its pairing control method, control device and storage medium. Background Technology

[0002] The smart wearable device market has grown rapidly in recent years, with a wide variety of products covering smartwatches, health monitoring bracelets, smart glasses, and other forms. As technology advances, consumers' functional demands for smart wearable devices are constantly increasing. To meet these multifunctional needs, smart wearable devices are no longer limited to single-device applications but have evolved to enable collaborative work between multiple devices, achieving functional diversification, improving user convenience, and enhancing the user experience. Summary of the Invention

[0003] The main objective of this invention is to provide a smart wearable device and its pairing control method, control device, and storage medium, aiming to improve the user convenience and user experience of smart wearable devices.

[0004] To achieve the above objectives, the present invention proposes a pairing control method for a smart wearable device, wherein the smart wearable device includes a master device and a slave device, and the pairing control method for the smart wearable device includes:

[0005] Upon receiving a mode setting trigger command, the mode setting type is determined based on the mode setting trigger command;

[0006] When the mode setting type is determined to be pairing mode, control the master device and slave device to pair;

[0007] When the mode setting type is determined to be distribution network mode, the main device is controlled to perform distribution network.

[0008] In one embodiment, the smart wearable device further includes a charging case; when the master device and the slave device are placed into the charging case, the master device and the slave device are respectively connected to the charging case to output a mode setting trigger command to the charging case;

[0009] Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes:

[0010] When the charging box receives mode setting trigger commands from both the master device and the slave device, it determines the mode setting type to be pairing mode based on the mode setting trigger commands.

[0011] Alternatively, the charging case has a user input operation component that generates a mode setting trigger command representing pairing when the user input operation component is triggered by the user operation.

[0012] When the charging case receives a mode setting trigger command triggered by the user to indicate pairing, it determines the mode setting type to pairing mode based on the mode setting trigger command.

[0013] In one embodiment, when the mode setting type is determined to be pairing mode, controlling the master device and slave device to pair includes:

[0014] The charging case reads the Bluetooth address of the slave device and sends it to the master device;

[0015] When the master device determines that the slave device's Bluetooth address is a paired address, it will pair with the slave device.

[0016] When the master device determines that the slave device's Bluetooth address is an unpaired address, it will write the slave device's Bluetooth address into the pairing list to pair the master device and the slave device.

[0017] In one embodiment, before the charging case receives mode setting trigger commands from both the master device and the slave device, the pairing control method for the smart wearable device further includes:

[0018] When the main device receives a charging signal from the charging box, it sends a mode setting trigger command to the charging box.

[0019] When the device receives a charging signal from the charging box, it sends a mode setting trigger command to the charging box.

[0020] In one embodiment, the smart wearable device further includes a charging case, the charging case including a communication cable, the master device and the slave device being communicatively connected via the communication cable, and determining the mode setting type according to the mode setting trigger command upon receiving the mode setting trigger command includes:

[0021] When the master device receives a mode setting trigger command sent by the slave device via the communication line, it determines the mode setting type to be pairing mode based on the mode setting trigger command.

[0022] In one embodiment, when the mode setting type is determined to be pairing mode, controlling the master device and slave device to pair includes:

[0023] The master device reads the Bluetooth address of the slave device;

[0024] When the master device determines that the slave device's Bluetooth address is a paired address, it will pair with the slave device.

[0025] When the master device determines that the slave device's Bluetooth address is an unpaired address, it will write the slave device's Bluetooth address into the pairing list to pair the master device and the slave device.

[0026] In one embodiment, before the master device receives a mode setting trigger command sent by the slave device via the communication line, the pairing control method of the smart wearable device further includes:

[0027] When the master device receives a charging signal from the charging box, it sends a pairing request signal to the slave device.

[0028] When the slave device receives a pairing request signal, it sends a mode setting trigger command to the master device.

[0029] In one embodiment, the smart wearable device further includes a charging case, which includes a communication cable. The master device and the slave device are communicatively connected via the communication cable. The charging case has a user input operation component. When the user input operation component is triggered by a user operation, a mode setting trigger command representing pairing is generated.

[0030] Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes:

[0031] When the charging case receives a mode setting trigger command triggered by the user to indicate pairing, it determines the mode setting type to pairing mode based on the mode setting trigger command.

[0032] In one embodiment, when the mode setting type is determined to be pairing mode, controlling the master device and slave device to pair includes:

[0033] The master device reads the slave device's Bluetooth address via the communication line;

[0034] When the master device determines that the slave device's Bluetooth address is a paired address, it will pair with the slave device.

[0035] When the master device determines that the slave device's Bluetooth address is an unpaired address, it will write the slave device's Bluetooth address into the pairing list to pair the master device and the slave device.

[0036] In one embodiment, the smart wearable device further includes a charging case. When the main device is placed into the charging case, the main device is communicatively connected to the charging case. The charging case has a user input operation component. When the user input operation component is triggered by user operation, a mode setting trigger command representing the power distribution network is generated.

[0037] Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes:

[0038] When the charging box receives a user-triggered mode setting trigger command representing the network distribution mode, it determines the mode setting type as network distribution mode based on the mode setting trigger command.

[0039] In one embodiment, controlling the master device to perform network distribution when the mode setting type is determined to be distribution mode includes:

[0040] The charging box sends an external pairing control signal to the main device to control the main device to enter the external pairing mode;

[0041] When the main device is in external pairing mode, it performs network configuration when it receives network information sent by an external device.

[0042] In one embodiment, the master device has a user input operation component, which generates a mode setting trigger command characterizing the distribution network when the user input operation component is triggered by a user operation.

[0043] Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes:

[0044] When the master device receives a user-triggered mode setting trigger command representing the distribution network, it determines the mode setting type as distribution network mode based on the mode setting trigger command.

[0045] In one embodiment, controlling the master device to perform network distribution when the mode setting type is determined to be distribution mode includes:

[0046] When the main device is in network configuration mode, it enters external pairing mode to pair with external devices;

[0047] When the main device is in external pairing mode, it performs network configuration when it receives network information sent by an external device.

[0048] In one embodiment, the main device has a network operation page, and the step of determining the mode setting type according to the mode setting trigger instruction upon receiving the mode setting trigger instruction includes:

[0049] When the main device receives a mode setting trigger command for the distribution network triggered by the user through the network operation page, it determines the mode setting type as distribution network mode based on the mode setting trigger command.

[0050] In one embodiment, controlling the master device to perform network distribution when the mode setting type is determined to be distribution mode includes:

[0051] When the main device receives a selection signal triggered by the user through the network operation page, it matches the corresponding network.

[0052] When the main device receives the network information input by the user through the network operation page, it performs network configuration based on the network information.

[0053] In one embodiment, the smart wearable device further includes a charging case; when the master device and the slave device are placed into the charging case, the master device and the slave device are respectively communicatively connected to the charging case, and the charging case has a user input operation component, which generates a mode setting trigger command representing pairing when the user input operation component is triggered by user operation;

[0054] Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes:

[0055] When the charging case receives a mode setting trigger command triggered by the user, indicating that it is paired with the external device, it determines the mode setting type to be pairing mode based on the mode setting trigger command.

[0056] In one embodiment, the pairing control method for the smart wearable device further includes:

[0057] When the mode setting type is determined to be pairing mode, the slave device will pair with the external device upon receiving a pairing connection request signal sent by the external device.

[0058] In one embodiment, the main device has a Bluetooth operation page, and the step of determining the mode setting type according to the mode setting trigger command upon receiving the mode setting trigger command includes:

[0059] When the master device receives a mode setting trigger command triggered by the user through the Bluetooth operation page, indicating that the mode setting type is a pairing mode, it determines the mode setting type as a pairing mode based on the mode setting trigger command.

[0060] In one embodiment, the pairing control method for the smart wearable device further includes:

[0061] When the master device receives a selection signal triggered by the user through the Bluetooth operation page, it determines the Bluetooth address based on the selection signal and pairs with the external device corresponding to the Bluetooth address.

[0062] The present invention also proposes a control device, the control device comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, the computer program being configured to implement the steps of the pairing control method for the smart wearable device described in any of the preceding claims.

[0063] The present invention also proposes a smart wearable device, which includes the control device described above.

[0064] In one embodiment, the smart wearable device includes a master device, a slave device, and a charging case;

[0065] The master device and the slave device are respectively electrically connected to the charging box.

[0066] The present invention also proposes a storage medium, which is a computer-readable storage medium, on which a computer program is stored, and when the computer program is executed by a processor, it implements the steps of the pairing control method for the smart wearable device described above.

[0067] This invention proposes a pairing control method for a smart wearable device, which includes a master device and a slave device. In the pairing control method, upon receiving a mode setting trigger command, the mode setting type is first determined according to the mode setting trigger command; then, if the mode setting type is determined to be a pairing mode, the master device and the slave device are controlled to pair; and if the mode setting type is determined to be a network configuration mode, the master device is controlled to configure the network.

[0068] In practical applications, through the network configuration mode, smart wearable devices can connect to Wi-Fi networks to access internet services such as cloud storage and online video streaming. Alternatively, they can connect to external devices, allowing them to function as multimedia terminals, displaying and playing content from those devices. The pairing mode enables the master and slave devices to work together to perform multiple tasks, such as video calls and navigation. Users can easily switch between different devices, improving user convenience. Furthermore, this invention can use specially designed wireless earphones as slave devices, providing higher quality and more private audio output, thereby enhancing the user experience. Dividing the smart wearable device into master and slave components allows for the use of the appropriate device when a specific function is needed, thus improving the flexibility of the smart wearable device. Attached Figure Description

[0069] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0070] Figure 1 This is a flowchart illustrating an embodiment of the pairing control method for a smart wearable device according to the present invention;

[0071] Figure 2 This is a flowchart illustrating another embodiment of the pairing control method for the smart wearable device of the present invention;

[0072] Figure 3 This is a flowchart illustrating another embodiment of the pairing control method for the smart wearable device of the present invention;

[0073] Figure 4 This is a flowchart illustrating another embodiment of the pairing control method for the smart wearable device of the present invention;

[0074] Figure 5 This is a schematic flowchart of another embodiment of the pairing control method for the smart wearable device of the present invention;

[0075] Figure 6 This is a flowchart illustrating an embodiment of the pairing control method for a smart wearable device according to the present invention;

[0076] Figure 7 This is a flowchart illustrating another embodiment of the pairing control method for the smart wearable device of the present invention;

[0077] Figure 8 This is a flowchart illustrating another embodiment of the pairing control method for the smart wearable device of the present invention;

[0078] Figure 9 This is a flowchart illustrating another embodiment of the pairing control method for the smart wearable device of the present invention;

[0079] Figure 10 This is a schematic flowchart of another embodiment of the pairing control method for the smart wearable device of the present invention;

[0080] Figure 11 This is a flowchart illustrating another embodiment of the pairing control method for the smart wearable device of the present invention;

[0081] Figure 12 This is a flowchart illustrating another embodiment of the pairing control method for the smart wearable device of the present invention;

[0082] Figure 13 This is a flowchart illustrating another embodiment of the pairing control method for the smart wearable device of the present invention;

[0083] Figure 14 This is a schematic diagram of a module of an embodiment of the smart wearable device of the present invention;

[0084] Figure 15 This is a schematic diagram of a module of another embodiment of the smart wearable device of the present invention.

[0085] The realization of the objective, functional features and advantages of the present invention will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0086] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.

[0087] It should be noted that step designations such as S100 and S200 are used in this document for the purpose of more clearly and concisely describing the corresponding content, and do not constitute a substantial limitation on the order. In specific implementation, those skilled in the art may execute S200 first and then S100, etc., but these should all be within the protection scope of this application.

[0088] The smart wearable device market has grown rapidly in recent years, with a wide variety of products covering smartwatches, health monitoring bracelets, smart glasses, and other forms. As technology advances, consumers' functional demands for smart wearable devices are constantly increasing. To meet these multifunctional needs, smart wearable devices are no longer limited to single-device applications but have evolved to enable collaborative work between multiple devices, achieving functional diversification, improving user convenience, and enhancing the user experience.

[0089] Smart glasses are increasingly becoming a part of people's lives, making work and life more convenient. However, existing smart glasses suffer from poor wearing comfort. For example, the presence of speakers in smart glasses increases their weight and affects wearing comfort, or the audio performance of smart glasses is poor (most existing smart glasses are open-back audio glasses, and the space inside the glasses and the distance between the temples and the ears limits audio performance).

[0090] Therefore, refer to Figure 1 This invention proposes a pairing control method for a smart wearable device, the smart wearable device including a master device and a slave device, the pairing control method for the smart wearable device including:

[0091] Step S100: Upon receiving a mode setting trigger instruction, determine the mode setting type according to the mode setting trigger instruction;

[0092] Step S200: When the mode setting type is determined to be pairing mode, control the master device and the slave device to pair.

[0093] Step S300: When the mode setting type is determined to be distribution network mode, control the main device to perform distribution network.

[0094] In this embodiment, the pairing control method for the smart wearable device of the present invention can be applied to the control device of the smart wearable device. For example, the control device integrates a memory for storing the pairing control program of the smart wearable device and a processor for executing the pairing control program of the smart wearable device. The control device can be implemented using a main controller, such as an MCU, DSP (Digital Signal Processor), FPGA (Field Programmable Gate Array), PLC, or SOC (System on Chip). Both the master and slave devices can be implemented using electronic devices such as smart glasses, headphones, wristbands, and watches.

[0095] Taking smart glasses as the main device and wireless earphones as the slave device as an example, considering the miniaturization requirements of wearable devices, the antenna and speaker can be placed on the earphones, allowing them to handle audio playback and communication functions. This eliminates the need for a speaker and antenna inside the smart glasses, reducing size and weight and improving wearing comfort. Furthermore, the earphones can be in various forms, such as open-back, semi-in-ear, and in-ear, to meet the needs of different user groups and enhance the audio experience. The smart wearable device also includes a charging case with at least two independent compartments. The shape and size of each compartment can be designed according to the actual needs of the product to accommodate the form factors of the main and slave devices. When the earphones and smart glasses are placed in the charging case, they communicate with the charging case. The charging case can have a built-in intelligent control module (MCU) with functions such as charging management, temperature monitoring, and status display, ensuring optimal charging performance for each device.

[0096] Specifically, the control device can be located within the main device, slave device, or charging case. The main device, slave device, or charging case can be equipped with user input operation components. When a user needs to use both headphones and smart glasses simultaneously, i.e., requires pairing or network connection, the user simply presses the corresponding input operation component. For example, the charging case has a first user input operation component and a second user input operation component. The first user input operation component, when triggered by the user, outputs a pairing mode setting trigger command, and the second user input operation component, when triggered by the user, outputs a network connection mode setting trigger command. When the user places the smart glasses and headphones into the charging case, pressing the first user input operation component on the charging case triggers the MCU within the charging case. Upon receiving the mode setting command, the MCU determines the mode setting type to be pairing mode and controls the smart glasses and headphones to pair. After pairing, the user can simultaneously view the screen through the smart glasses and play audio through the headphones. Furthermore, the headphones and smart glasses can also be used independently, paired with external devices. For example, the headphones can be used as ordinary Bluetooth headphones to pair with external terminals such as mobile phones and tablets to play audio output from these terminals; or the smart glasses can be used as ordinary display devices to display images after pairing with external terminals. Thus, the headphones and smart glasses are not limited to collaborative operation, improving the practicality and flexibility of smart wearable devices. If the user presses the second user input operation component on the charging case, the MCU inside the charging case, upon receiving a mode setting command, determines the mode setting type to be network pairing mode based on the received mode setting trigger command, and controls the smart glasses to pair with the network. For example, through network pairing mode, the smart wearable device can connect to a Wi-Fi network to access internet services such as cloud storage and online video streaming. Alternatively, it can connect to external devices, allowing the smart wearable device to act as a multimedia terminal, displaying and playing content from external devices. Simultaneously, if the headphones and smart glasses are already paired, audio output from external devices can also be played through the headphones, providing a high-quality, private audio experience. In addition, the user input operation component can be presented as a combination of buttons to reduce the risk of accidental triggering and improve the accuracy of pairing or network pairing operations.

[0097] It should be noted that, in addition to triggering smart wearable devices to enter pairing or network pairing mode via physical or virtual buttons, they can also be automatically triggered by detecting whether they receive charging voltage from the charging case. This simplifies the user's operation process and makes device management more convenient. For example, the master device and slave device each include a power supply terminal for receiving charging voltage, a voltage detection module, and a main controller. The voltage detection module detects the voltage signal of the corresponding power supply terminal and outputs a corresponding voltage detection signal to the corresponding connected main controller. The main controller then processes the signal and outputs it to the charging case. The charging case can then determine whether the master device and slave device have been placed inside the charging case based on the received signal, thereby determining whether the master device and slave device meet the pairing or network pairing requirements. Optionally, when the master device and slave device are placed in the corresponding charging compartment of the charging case, the voltage detection modules of the master device and slave device can receive the charging voltage provided by the charging case. At this time, the main controllers of the master device and slave device output a mode setting trigger command to the charging case upon receiving the charging voltage. This allows the charging case's control device to control the master device and slave device to pair, or control the master device to perform network pairing, based on the mode setting trigger command. Optionally, the master device and slave device can also communicate via a communication line. When the slave device's master controller processes the voltage detection signal and determines that the slave device is in the charging case, it directly outputs a mode setting trigger command to the master device's master controller via the communication line. When the master device receives the mode setting trigger command from the slave device, it selects to enter either pairing mode or network configuration mode. In this embodiment, the smart wearable device can provide both modes simultaneously to meet the needs of different users.

[0098] In practical applications, the pairing mode allows the master and slave devices to work together to complete multiple tasks, such as video calls and navigation guidance. Users can easily switch between different devices, and by using specially designed wireless earphones, they can obtain higher quality audio output, thereby enhancing the user experience. Furthermore, this invention divides the smart wearable device into two parts: a master device and a slave device. This allows the corresponding device to be used when only a single function is needed, improving the flexibility of the smart wearable device.

[0099] In one embodiment of the present invention, the smart wearable device further includes a charging case; when the master device and the slave device are placed into the charging case, the master device and the slave device are respectively connected to the charging case to output a mode setting trigger command to the charging case;

[0100] Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes:

[0101] When the charging box receives mode setting trigger commands from both the master device and the slave device, it determines the mode setting type to be pairing mode based on the mode setting trigger commands.

[0102] Alternatively, the charging case has a user input operation component that generates a mode setting trigger command representing pairing when the user input operation component is triggered by the user operation.

[0103] When the charging case receives a mode setting trigger command triggered by the user to indicate pairing, it determines the mode setting type to pairing mode based on the mode setting trigger command.

[0104] Based on the above embodiments, when the user confirms that both the master device and the slave device are placed in the charging case, the user input operation component on the charging case used to set the pairing mode can be pressed. When the charging case receives the mode setting trigger command indicating pairing triggered by the user, it determines the mode setting type to pairing mode according to the mode setting trigger command and controls the master device and the slave device to pair and connect.

[0105] Optionally, before the charging case receives mode setting trigger commands from both the master and slave devices, the pairing control method for the smart wearable device further includes:

[0106] When the main device receives a charging signal from the charging box, it sends a mode setting trigger command to the charging box.

[0107] When the device receives a charging signal from the charging box, it sends a mode setting trigger command to the charging box.

[0108] In this embodiment, when both the master device and the slave device are placed inside the charging case, the charging case establishes a communication connection with both the master device and the slave device, respectively. (Refer to...) Figure 14The master device and slave devices 1 and 2 are connected to the MCU control unit of the charging box via UART communication lines. The charging box outputs corresponding charging signals to the master and slave devices to charge them. Therefore, when the master device receives a charging signal from the charging box, its control unit can send a mode setting trigger command to the charging box's control unit. Similarly, when the slave device receives a charging signal from the charging box, its control unit can send a mode setting trigger command to the charging box's control unit. In this way, the charging box can determine whether both the master and slave devices are placed inside the charging box based on the received mode setting trigger commands. For example, if the charging box receives only one mode setting trigger command from either the master or slave device, it means that both the master and slave devices are not fully inside the charging box, and therefore, it will not control the master and slave devices to pair. Only when both mode setting trigger commands are received will the charging box determine the mode setting type as pairing mode and control the master and slave devices to pair. This improves the problem of devices failing to pair, reduces power consumption, and increases the battery life of wearable devices.

[0109] Optionally, refer to Figure 2 When the mode setting type is determined to be pairing mode, controlling the master device and slave device to pair includes:

[0110] Step S210: The charging case reads the Bluetooth address of the slave device and sends it to the master device;

[0111] Step S220: When the master device determines that the Bluetooth address of the slave device is a paired address, it pairs with the slave device.

[0112] Step S230: When the master device determines that the Bluetooth address of the slave device is an unpaired address, it writes the Bluetooth address of the slave device into the pairing list to pair the master device and the slave device.

[0113] In this embodiment, when the charging box determines that the mode setting type is pairing mode based on the mode setting trigger command sent by the master device and the slave device or the mode setting trigger command output by the user input component, the charging box can read the Bluetooth address of the slave device and send it to the master device because the charging box is connected to both the slave device and the master device. This allows the master device to determine whether the received Bluetooth address is a paired address. If the slave device's Bluetooth address is a paired address, it means that this is not the first pairing connection, and pairing can proceed directly. If the slave device's Bluetooth address is an unpaired address, it means that this is the first pairing connection, and the master device needs to write the slave device's Bluetooth address into the pairing list before pairing it with the slave device.

[0114] This explanation will use smart glasses as the main device and TWS earphones (hereinafter referred to as earphones) as the slave device as an example. (Reference) Figure 5 When the user places both the smart glasses and earphones into the corresponding charging compartment of the charging case, both the smart glasses and earphones can detect the charging voltage (charging signal) sent by the charging case. Upon receiving the charging voltage, they send a mode setting trigger command to the charging case via the UART communication line. This ensures that the charging case is aware that both the smart glasses and earphones are inside the charging case when it receives the mode setting trigger command from both the smart glasses and earphones via the UART communication line. At this point, the charging case reads the Bluetooth address of the earphones and transmits it to the smart glasses via the UART communication line. Based on the received Bluetooth address, the smart glasses can detect whether the earphones are already paired. If so, they directly complete the pairing connection; otherwise, they write the Bluetooth address of the earphones into their own pairing list and complete the pairing.

[0115] Optionally, in addition to the smart wearable device automatically detecting and determining whether the earphones and smart glasses are both in the charging case, the pairing mode can also be manually determined and triggered. (Reference) Figure 6 For example, if a user presses the corresponding button on the charging case three times within 2 seconds (user input operation component), a corresponding pairing mode setting trigger command will be output, controlling the smart glasses and earphones to enter automatic pairing mode. That is, when the charging case receives the pairing mode setting trigger command, it reads the Bluetooth address of the earphones and outputs it to the smart glasses, enabling the smart glasses to complete the pairing connection with the earphones. In this embodiment, the pairing mode setting trigger command output by the user input operation component on the charging case is a "short pulse sequence" type operation signal, used to quickly activate the smart wearable device to enter pairing mode. The signal is sent to the control device of the charging case by the user completing a specific number of button operations within a specified time. The number of operations and the time are set by the developers according to actual needs. This can be distinguished from the user input operation components on the master device and slave device that represent pairing mode, or from the user input operation components on the charging case, master device, and slave device that represent network pairing mode.

[0116] With the above settings, the charging case acts as the main control device for smart wearable devices, controlling the master and slave devices to enter pairing mode. Users only need to perform simple operations (such as pressing the button on the charging case or placing the earphones and smart glasses into the charging case) to trigger automatic pairing between the master and slave devices, improving pairing efficiency and enhancing user experience.

[0117] In one embodiment, the smart wearable device further includes a charging case, the charging case including a communication cable, the master device and the slave device being communicatively connected via the communication cable, and determining the mode setting type according to the mode setting trigger command upon receiving the mode setting trigger command includes:

[0118] When the master device receives a mode setting trigger command sent by the slave device via the communication line, it determines the mode setting type to be pairing mode based on the mode setting trigger command.

[0119] Before the master device receives the mode setting trigger command sent by the slave device via the communication line, the pairing control method of the smart wearable device further includes:

[0120] When the master device receives a charging signal from the charging box, it sends a pairing request signal to the slave device.

[0121] When the slave device receives a pairing request signal, it sends a mode setting trigger command to the master device.

[0122] In this embodiment, when the master device is placed in the charging case, it receives a charging signal from the charging case. Upon receiving the charging signal, the master device sends a pairing request signal to the slave device via the UART communication line. If the slave device is present in the charging case at this time, the slave device and the master device can communicate via the communication line. When the slave device receives the pairing request signal, it outputs a corresponding mode setting trigger command to the master device, i.e., returns a correct feedback signal (mode setting trigger command) to the master device, enabling the master device to confirm the presence of the earphones and complete the pairing connection. If no slave device is placed in the charging case, the master device may not receive or may receive an incorrect feedback signal (not a mode setting trigger command) after sending the pairing request signal upon receiving the charging signal. This indicates that the earphones are not in a pairing state and cannot be paired, thus eliminating the need for unnecessary pairing operations.

[0123] Optionally, refer to Figure 3 When the mode setting type is determined to be pairing mode, controlling the master device and slave device to pair includes:

[0124] Step S211: The master device reads the Bluetooth address of the slave device;

[0125] Step S221: When the master device determines that the Bluetooth address of the slave device is a paired address, it pairs with the slave device.

[0126] Step S231: When the master device determines that the Bluetooth address of the slave device is an unpaired address, it writes the Bluetooth address of the slave device into the pairing list to pair the master device and the slave device.

[0127] In this embodiment, when the master device receives a mode setting trigger command sent by the slave device and determines that the mode setting type is pairing mode according to the mode setting trigger command, the master device reads the Bluetooth address of the slave device through the communication line to determine whether it is a device connecting for the first time based on the Bluetooth address. If the address is a paired Bluetooth address, it means that the master device and the slave device are not connecting for the first time and can directly pair. If the address is an unpaired Bluetooth address, it means that the master device and the slave device are connecting for the first time and the master device needs to write the Bluetooth address into the pairing list before completing the pairing.

[0128] It should be noted that the reference Figure 15 When both the master device and the slave device are placed in the charging compartment of the charging box, the master device communicates with slave device 1 via UART1 and with slave device 2 via UART2. That is, the master device and the slave device can communicate without going through the MCU of the charging box.

[0129] This explanation will use smart glasses as the main device and TWS earphones (hereinafter referred to as earphones) as the slave device as an example. (Reference) Figure 7 When the user places both the smart glasses and earphones into the corresponding charging compartment of the charging case, the smart glasses can detect the charging voltage (charging signal) sent by the charging case. Upon receiving the charging voltage, the smart glasses send a pairing request signal to the earphones via the UART communication line. This allows the smart glasses to determine that the earphones are also in the charging case when they receive the mode setting trigger command sent by the earphones via the UART communication line. At this time, the smart glasses read the Bluetooth address of the earphones and can detect whether the earphones are already paired based on the received Bluetooth address. If they are, the pairing connection is completed directly. If not, the smart glasses write the Bluetooth address of the earphones into their own pairing list and complete the pairing.

[0130] Optionally, in addition to the smart wearable device automatically detecting and determining whether the earphones and smart glasses are simultaneously in the charging case, the pairing mode can also be manually determined and triggered. In this embodiment, the smart wearable device further includes a charging case, which includes a communication cable. The master device and the slave device are communicatively connected via the communication cable. The charging case has a user input operation component. When the user input operation component is triggered by the user, a mode setting trigger command representing pairing is generated.

[0131] Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes:

[0132] When the charging case receives a mode setting trigger command triggered by the user to indicate pairing, it determines the mode setting type to pairing mode based on the mode setting trigger command.

[0133] refer to Figure 4When the mode setting type is determined to be pairing mode, controlling the master device and slave device to pair includes:

[0134] Step S212: The master device reads the Bluetooth address of the slave device via the communication line;

[0135] Step S222: When the master device determines that the slave device's Bluetooth address is a paired address, it pairs with the slave device.

[0136] Step S232: When the master device determines that the Bluetooth address of the slave device is an unpaired address, it writes the Bluetooth address of the slave device into the pairing list to pair the master device and the slave device.

[0137] In conjunction with the above embodiments, the charging case is equipped with a user input operation component. When triggered by the user, it outputs a pairing mode setting trigger command. When the user places the smart glasses and earphones into the charging case, pressing the user input operation component on the charging case will cause the MCU inside the charging case to receive the mode setting command. Based on the received mode setting trigger command, the MCU determines the mode setting type to be pairing mode and controls the smart glasses and earphones to pair. (Refer to...) Figure 8 When the user presses the user input operation component, such as pressing the corresponding button on the charging case three times within 2 seconds, the corresponding pairing mode setting trigger command will be output to control the smart glasses and earphones to enter automatic pairing mode. That is, when the smart glasses receive the corresponding control signal from the charging case, they read the Bluetooth address of the earphones through the communication line and determine whether it is a device being connected for the first time based on the Bluetooth address. If the address is a paired Bluetooth address, it means that the master device and the slave device are not connecting for the first time and can be paired directly. If the address is an unpaired Bluetooth address, it means that the master device and the slave device are connecting for the first time and the master device needs to write the Bluetooth address into the pairing list before completing the pairing.

[0138] In practical applications, when both the master device (such as smart glasses) and the slave device (such as wireless earphones) are placed in the charging case, they can communicate without going through the charging case's control unit (MCU). This reduces the number of steps in the data transmission path, thereby reducing communication latency. This is especially important for real-time applications, such as voice calls and instant feedback. UART communication is a serial communication protocol; a direct connection ensures reliable data transmission and avoids additional interference that might be introduced by relaying data through the charging case. Furthermore, during pairing, the master and slave devices can directly exchange pairing information without going through the charging case, simplifying the pairing process and enabling faster pairing and data synchronization between devices. This reduces user waiting time and improves the user experience.

[0139] It's worth noting that smart glasses can display virtual information, such as historical information and navigation guides at tourist attractions. They can also receive voice assistant services from the cloud, such as weather forecasts and news summaries. Furthermore, they can display notifications from social media, emails, and other sources. Through network configuration, smart glasses can not only interact with local devices but also access a wide range of network resources and services, greatly enriching their functionality and practicality.

[0140] In another embodiment, the smart wearable device further includes a charging case. When the main device is placed into the charging case, the main device is communicatively connected to the charging case. The charging case has a user input operation component. When the user input operation component is triggered by user operation, a mode setting trigger command representing the power distribution network is generated.

[0141] Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes:

[0142] When the charging box receives a user-triggered mode setting trigger command representing the network distribution mode, it determines the mode setting type as network distribution mode based on the mode setting trigger command.

[0143] Based on the above embodiments, the charging box can be equipped with a first user input operation component and a second user input operation component. When the first user input operation component is triggered by the user, it outputs a pairing mode setting trigger command, and when the second user input operation component is triggered by the user, it outputs a network configuration mode setting trigger command. Optionally, the first and second user input operation components can be integrated into the same button (multi-function button). For example, when the user presses the multi-function button on the charging box three times within 2 seconds, the MCU inside the charging box will receive a pairing mode setting command. When the user presses the multi-function button on the charging box for more than 3 seconds, the MCU inside the charging box will receive a network configuration mode setting command. In this way, the mode setting type can be determined according to the mode setting trigger command. For example, when the charging box receives a network configuration mode setting command, it determines the mode setting type to be network configuration mode based on the mode setting trigger command and controls the main device to perform network configuration.

[0144] Optionally, when the mode setting type is determined to be distribution network mode, controlling the master device to perform distribution network includes:

[0145] The charging box sends an external pairing control signal to the main device to control the main device to enter the external pairing mode;

[0146] When the main device is in external pairing mode, it performs network configuration when it receives network information sent by an external device.

[0147] refer to Figure 11When users need to pair their smart glasses with a network, they can press the multi-function button on the charging case. For example, pressing and holding for more than 3 seconds will send a corresponding pairing control signal to the smart glasses, putting them into pairing mode. Once in pairing mode, the smart glasses will appear in the Bluetooth device list, allowing external devices such as smartphones to search for and pair them. Users can then find the smart glasses through the Bluetooth settings interface of their smartphones or other external devices and select to pair. After successful pairing, a Bluetooth connection is established between the smart glasses and the smartphone. Users can then open the dedicated smart glasses app installed on their smartphones. The app communicates with the smart glasses via Bluetooth. Users enter the Wi-Fi name (SSID) and password in the app and submit it; this network information is transmitted to the smart glasses via Bluetooth. After receiving the network information, the smart glasses attempt to connect to the specified Wi-Fi network. If the Wi-Fi information is correct, the smart glasses will successfully connect. Once connected, the smart glasses can access the internet via Wi-Fi to obtain and send data. For example, users can browse web pages, watch online videos, and read news articles through the smart glasses.

[0148] It's worth noting that if the earphones and smart glasses are successfully paired via Bluetooth, they can work together to provide more functionality. For example, they can provide clear audio output during video conferences or video viewing; offer a private and clear call experience during voice calls; and provide voice prompts while the smart glasses display navigation information. In multilingual communication, the smart glasses can display translated text, while the earphones play the translated audio.

[0149] Understandably, by placing the user input operation component used to trigger the main device to perform network configuration operations on the charging box, users can complete network configuration without removing the smart glasses when wearing them. This allows users to quickly respond to temporary network connection needs without interrupting their current activities, thus maintaining the continuity of using the smart glasses.

[0150] In practical applications, users can easily pair smart glasses with external devices and connect to Wi-Fi networks in just a few simple steps. Pairing via Bluetooth and inputting Wi-Fi information through a mobile app reduces the risk of Wi-Fi information leakage. Thus, smart glasses can not only establish Bluetooth connections with external terminals such as mobile phones or headphones, but also access the internet via Wi-Fi, enabling richer functions and services, increasing the functionality of smart glasses, and ultimately enhancing the user experience.

[0151] In another embodiment, the master device has a user input operation component, which generates a mode setting trigger command characterizing the distribution network when the user input operation component is triggered by a user operation.

[0152] Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes:

[0153] When the master device receives a user-triggered mode setting trigger command representing the distribution network, it determines the mode setting type as distribution network mode based on the mode setting trigger command.

[0154] When the mode setting type is determined to be distribution mode, controlling the main device to perform distribution includes:

[0155] When the main device is in network configuration mode, it enters external pairing mode to pair with external devices;

[0156] When the main device is in external pairing mode, it performs network configuration when it receives network information sent by an external device.

[0157] In this embodiment, the main device may also be equipped with a user input operation component. When triggered by the user, this component outputs a mode setting trigger command representing the network distribution mode to the control device of the main device. This allows the main device to determine that the mode setting type is network distribution mode upon receiving the mode setting trigger command and control the device to perform network distribution. It should be noted that the mode setting trigger command output by the user input operation component on the main device can be a short press signal (double-click, single-click, triple-click, etc.), a long press signal (such as a press duration exceeding a preset time), a multi-stage press signal (such as a preset number of presses within a preset time), or a combination key trigger signal. In this embodiment, a long press signal exceeding 3 seconds is used as the mode setting trigger command.

[0158] refer to Figure 12Taking smart glasses as the main device as an example, when a user needs to pair the smart glasses with a network, they can press the multi-function button on the smart glasses. For example, pressing and holding for more than 3 seconds will put the smart glasses into pairing mode. After entering pairing mode, the smart glasses will appear in the Bluetooth device list, allowing external devices such as mobile phones to search for and pair with them. The user can search for the smart glasses through the Bluetooth settings interface of the mobile phone or other external device and select to pair. After successful pairing, a Bluetooth connection is established between the smart glasses and the mobile phone. The user can then open the dedicated smart glasses app installed on the mobile phone. The app communicates with the smart glasses via Bluetooth. The user enters the WiFi name (SSID) and password in the app interface and submits it through the app. This network information is transmitted to the smart glasses via Bluetooth. After receiving the network information, the smart glasses attempt to connect to the specified WiFi network. If the WiFi information is correct, the smart glasses will successfully connect to the WiFi network. After a successful connection, the smart glasses can access the Internet through WiFi to obtain and send data. For example, the user can browse web pages, watch online videos, and read news information through the smart glasses.

[0159] In practical applications, since the charging case communicates with the main device, the user input operation component used to trigger output mode setting commands can be located on either the charging case or the main device. This allows users to trigger the corresponding user input operation component to perform network pairing operations on the main device. The button-triggered operation method simplifies the network pairing and pairing process, improving user convenience. Both smart glasses and the charging case can serve as entry points for triggering network pairing or pairing operations, enhancing compatibility between devices in smart wearables.

[0160] In another embodiment, the main device has a network operation page, and the step of determining the mode setting type according to the mode setting trigger instruction upon receiving the mode setting trigger instruction includes:

[0161] When the main device receives a mode setting trigger command for the distribution network triggered by the user through the network operation page, it determines the mode setting type as distribution network mode based on the mode setting trigger command.

[0162] When the mode setting type is determined to be distribution mode, controlling the main device to perform distribution includes:

[0163] When the main device receives a selection signal triggered by the user through the network operation page, it matches the corresponding network.

[0164] When the main device receives the network information input by the user through the network operation page, it performs network configuration based on the network information.

[0165] Taking smart glasses as an example, the main device includes a display screen, a touch control panel, and a voice recognition component. The display screen or virtual display screen shows the network operation page. This page includes a list of available Wi-Fi networks and an input box for entering the Wi-Fi password. (Reference) Figure 13 When a user opens the smart glasses' network operation page (WiFi settings page), the smart glasses receive a network configuration mode setting trigger command triggered by the user through the network operation page, and determine that the mode setting type is network configuration mode. The user can then select the desired WiFi network using various input methods such as touch control panel, voice command, eye tracking, and gestures. For example, the user can slide their finger on the touch control panel to select a network or say "select the first network." The smart glasses receive and recognize the selection signal triggered by the user on the network operation page, match the corresponding network, and input the corresponding network information through the touch control panel, voice command, eye tracking, or gestures. For example, the user can tap the alphanumeric keypad on the touch control panel to enter the WiFi password. To improve accuracy, after the user finishes inputting the password, the smart glasses will display a confirmation message asking the user to confirm. The user can confirm the entered WiFi information by tapping the confirmation button on the touchpad or saying "confirm." After receiving the confirmation command, the smart glasses will attempt to connect to the selected WiFi network. If the WiFi information is correct, the smart glasses will successfully connect to the WiFi network and display a connection success message. If the connection fails, the smart glasses will prompt the user to check if the entered WiFi information is correct and provide an option to re-enter it.

[0166] In practical applications, users can complete network configuration directly through the smart glasses' network operation page without the need for additional equipment. The intuitive and user-friendly interface reduces the learning curve for users. Users can directly input WiFi information through the smart glasses, minimizing the risk of information leakage. This improves user convenience and overall user experience.

[0167] It is understood that the master and slave devices proposed in this invention can not only work together, but also be paired and connected to external devices individually.

[0168] In one embodiment, the smart wearable device further includes a charging case; when the master device and the slave device are placed into the charging case, the master device and the slave device are respectively communicatively connected to the charging case, and the charging case has a user input operation component, which generates a mode setting trigger command representing pairing when the user input operation component is triggered by user operation;

[0169] Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes:

[0170] When the charging case receives a mode setting trigger command triggered by the user, indicating that it is paired with the external device, it determines the mode setting type to be pairing mode based on the mode setting trigger command.

[0171] The pairing control method for the smart wearable device also includes:

[0172] When the mode setting type is determined to be pairing mode, the slave device will pair with the external device upon receiving a pairing connection request signal sent by the external device.

[0173] In conjunction with the above embodiments, when the first user input operation component on the charging case is triggered by a user, it outputs a pairing mode setting trigger command. For example, if the user presses the corresponding button (first user input operation component) on the charging case three times within 2 seconds, the corresponding pairing mode setting trigger command will be output, controlling the smart glasses and earphones to enter automatic pairing mode. That is, when the charging case receives the pairing mode setting trigger command, it reads the Bluetooth address of the earphones and outputs it to the smart glasses, enabling the smart glasses to complete the pairing connection with the earphones. At this time, Figure 9 Users can also detect the Bluetooth address of the headphones and establish a pairing connection with the headphones through other external devices (such as mobile phones). After successful Bluetooth pairing, the headphones can be used independently to play audio signals output by external devices.

[0174] It should be noted that the charging case can also be equipped with a third user input component. When triggered by the user, this component outputs a pairing mode setting trigger command. For example, if the user presses the corresponding button on the charging case (the third user input component) three times within 2 seconds, the charging case's control device will control the earphones and smart glasses to enter pairing mode. At this time, when the slave device (earphones) receives a pairing connection request signal from an external device, it will pair with the external device.

[0175] In practical applications, the charging case enables pairing between smart glasses and earphones. Furthermore, the earphones can not only work with the main device but also pair with external devices (such as smartphones), expanding the functionality of smart wearables. Users can freely choose how to use the device in different scenarios, improving the practicality and user experience of smart wearables.

[0176] Understandably, the main device (such as smart glasses) can have a Bluetooth operation page, through which users can trigger the pairing process between the main device and external devices.

[0177] In one embodiment, the main device has a Bluetooth operation page, and the step of determining the mode setting type according to the mode setting trigger command upon receiving the mode setting trigger command includes:

[0178] When the master device receives a mode setting trigger command triggered by the user through the Bluetooth operation page, indicating that the mode setting type is a pairing mode, it determines the mode setting type as a pairing mode based on the mode setting trigger command.

[0179] The pairing control method for the smart wearable device also includes:

[0180] When the master device receives a selection signal triggered by the user through the Bluetooth operation page, it determines the Bluetooth address based on the selection signal and pairs with the external device corresponding to the Bluetooth address.

[0181] refer to Figure 10 Users trigger pairing mode via the Bluetooth operation page on the smart glasses. Upon receiving the pairing mode trigger command from the user through the Bluetooth operation page, the smart glasses determine the mode setting type is pairing mode and wait for the user's selection signal. When the user selects the corresponding external device through the Bluetooth operation page and triggers a pairing request, the smart glasses can confirm the Bluetooth address of the selected external device based on the selection signal and pair with the corresponding external device. Specifically, users can open the Bluetooth operation page through the smart glasses' touch panel or voice command. The page displays the current Bluetooth status of the smart glasses and lists nearby Bluetooth devices. Users see the name of the external device to be connected on the Bluetooth operation page and select the device through touch or voice operation. The smart glasses read the Bluetooth address of the selected external device (such as a smartphone), send a pairing request to the smartphone, and the user confirms the pairing request on the smartphone. After successful pairing, the smart glasses establish a Bluetooth connection with the smartphone. Thus, when audio playback is not required, the user can use the smart glasses independently. Compared with existing smart glasses with built-in speakers, this reduces size and weight and improves wearing comfort.

[0182] In practical applications, users can complete the pairing process through the Bluetooth operation page of the main device. Users do not need to remove their phones or other external devices; the pairing process can be completed directly through the main device. The Bluetooth operation page is intuitive and easy to use, reducing the difficulty of operation and improving the user experience. The smart glasses can also be paired with external devices independently, increasing the operational flexibility and user convenience of smart wearable devices.

[0183] The present invention also proposes a control device, the control device comprising: a memory, a processor, and a computer program stored in the memory and executable on the processor, the computer program being configured to implement the steps of the pairing control method for the smart wearable device described above.

[0184] It is worth noting that since the control device of the present invention is based on the pairing control method of the above-mentioned smart wearable device, the embodiments of the control device of the present invention include all the technical solutions of all embodiments of the pairing control method of the above-mentioned smart wearable device, and the technical effects achieved are exactly the same, so they will not be repeated here.

[0185] The present invention also proposes a smart wearable device, which includes the control device described above.

[0186] Optionally, the smart wearable device includes a master device, a slave device, and a charging case;

[0187] The master device and the slave device are respectively electrically connected to the charging box.

[0188] In this embodiment, the master and slave devices of the smart wearable device include, but are not limited to, headphones (such as TWS (True Wireless Stereo) headphones), smart glasses (such as AR glasses, VR glasses, audio glasses), watches, and wristbands. The charging case supports simultaneous charging of multiple types of master and slave devices, improving the compatibility and practicality of the charging case, thereby enhancing the user experience.

[0189] It is worth noting that since the smart wearable device of the present invention includes the above-mentioned control device, the embodiments of the smart wearable device of the present invention include all the technical solutions of all the embodiments of the above-mentioned control device, and the technical effects achieved are exactly the same, so they will not be repeated here.

[0190] The present invention also proposes a storage medium, which is a computer-readable storage medium, on which a computer program is stored, and when the computer program is executed by a processor, it implements the steps of the pairing control method for the smart wearable device described above.

[0191] It is worth noting that since the storage medium of the present invention is based on the pairing control method of the above-mentioned smart wearable device, the embodiments of the storage medium of the present invention include all the technical solutions of all embodiments of the pairing control method of the above-mentioned smart wearable device, and the technical effects achieved are exactly the same, so they will not be repeated here.

[0192] The above description is merely an optional embodiment of the present invention and does not limit the patent scope of the present invention. Any equivalent structural transformations made using the contents of the present invention's specification and drawings under the inventive concept of the present invention, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present invention.

Claims

1. A pairing control method for a smart wearable device, characterized in that, The smart wearable device includes a master device and a slave device, and the pairing control method of the smart wearable device includes: Upon receiving a mode setting trigger command, the mode setting type is determined based on the mode setting trigger command; When the mode setting type is determined to be pairing mode, control the master device and slave device to pair; When the mode setting type is determined to be distribution network mode, the main device is controlled to perform distribution network.

2. The pairing control method for a smart wearable device as described in claim 1, characterized in that, The smart wearable device also includes a charging case; when the main device and the slave device are placed into the charging case, the main device and the slave device are respectively connected to the charging case to set a trigger command to the charging case in an output mode. Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes: When the charging box receives mode setting trigger commands from both the master device and the slave device, it determines the mode setting type to be pairing mode based on the mode setting trigger commands. Alternatively, the charging case has a user input operation component that generates a mode setting trigger command representing pairing when the user input operation component is triggered by the user operation. When the charging case receives a mode setting trigger command triggered by the user to indicate pairing, it determines the mode setting type to pairing mode based on the mode setting trigger command.

3. The pairing control method for a smart wearable device as described in claim 2, characterized in that, When the mode setting type is determined to be pairing mode, controlling the master device and slave device to pair includes: The charging case reads the Bluetooth address of the slave device and sends it to the master device; When the master device determines that the slave device's Bluetooth address is a paired address, it will pair with the slave device. When the master device determines that the slave device's Bluetooth address is an unpaired address, it will write the slave device's Bluetooth address into the pairing list to pair the master device and the slave device.

4. The pairing control method for a smart wearable device as described in claim 2, characterized in that, Before the charging case receives mode setting trigger commands from both the master and slave devices, the pairing control method for the smart wearable device further includes: When the main device receives a charging signal from the charging box, it sends a mode setting trigger command to the charging box. When the device receives a charging signal from the charging box, it sends a mode setting trigger command to the charging box.

5. The pairing control method for a smart wearable device as described in claim 1, characterized in that, The smart wearable device further includes a charging case, which includes a communication cable. The master device and the slave device are communicatively connected via the communication cable. When a mode setting trigger command is received, determining the mode setting type based on the mode setting trigger command includes: When the master device receives a mode setting trigger command sent by the slave device via the communication line, it determines the mode setting type to be pairing mode based on the mode setting trigger command.

6. The pairing control method for a smart wearable device as described in claim 5, characterized in that, When the mode setting type is determined to be pairing mode, controlling the master device and slave device to pair includes: The master device reads the Bluetooth address of the slave device; When the master device determines that the slave device's Bluetooth address is a paired address, it will pair with the slave device. When the master device determines that the slave device's Bluetooth address is an unpaired address, it will write the slave device's Bluetooth address into the pairing list to pair the master device and the slave device.

7. The pairing control method for a smart wearable device as described in claim 5, characterized in that, Before the master device receives the mode setting trigger command sent by the slave device via the communication line, the pairing control method of the smart wearable device further includes: When the master device receives a charging signal from the charging box, it sends a pairing request signal to the slave device. When the slave device receives a pairing request signal, it sends a mode setting trigger command to the master device.

8. The pairing control method for a smart wearable device as described in claim 1, characterized in that, The smart wearable device also includes a charging case, which includes a communication cable. The main device and the slave device are connected via the communication cable. The charging case has a user input operation component. When the user input operation component is triggered by the user, a mode setting trigger command representing pairing is generated. Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes: When the charging case receives a mode setting trigger command triggered by the user to indicate pairing, it determines the mode setting type to pairing mode based on the mode setting trigger command.

9. The pairing control method for a smart wearable device as described in claim 8, characterized in that, When the mode setting type is determined to be pairing mode, controlling the master device and slave device to pair includes: The master device reads the slave device's Bluetooth address via the communication line; When the master device determines that the slave device's Bluetooth address is a paired address, it will pair with the slave device. When the master device determines that the slave device's Bluetooth address is an unpaired address, it will write the slave device's Bluetooth address into the pairing list to pair the master device and the slave device.

10. The pairing control method for a smart wearable device as described in claim 1, characterized in that, The smart wearable device also includes a charging case. When the main device is placed into the charging case, the main device is communicatively connected to the charging case. The charging case has a user input operation component. When the user input operation component is triggered by the user, a mode setting trigger command representing the power distribution network is generated. Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes: When the charging box receives a user-triggered mode setting trigger command representing the network distribution mode, it determines the mode setting type as network distribution mode based on the mode setting trigger command.

11. The pairing control method for a smart wearable device as described in claim 10, characterized in that, When the mode setting type is determined to be distribution mode, controlling the main device to perform distribution includes: The charging box sends an external pairing control signal to the main device to control the main device to enter the external pairing mode; When the main device is in external pairing mode, it performs network configuration when it receives network information sent by an external device.

12. The pairing control method for a smart wearable device as described in claim 1, characterized in that, The main equipment has a user input operation component, which generates a mode setting trigger command characterizing the distribution network when the user input operation component is triggered by user operation. Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes: When the master device receives a user-triggered mode setting trigger command representing the distribution network, it determines the mode setting type as distribution network mode based on the mode setting trigger command.

13. The pairing control method for a smart wearable device as described in claim 12, characterized in that, When the mode setting type is determined to be distribution mode, controlling the main device to perform distribution includes: When the main device is in network configuration mode, it enters external pairing mode to pair with external devices; When the main device is in external pairing mode, it performs network configuration when it receives network information sent by an external device.

14. The pairing control method for a smart wearable device as described in claim 1, characterized in that, The main device has a network operation page, and when a mode setting trigger command is received, determining the mode setting type according to the mode setting trigger command includes: When the main device receives a mode setting trigger command for the distribution network triggered by the user through the network operation page, it determines the mode setting type as distribution network mode based on the mode setting trigger command.

15. The pairing control method for a smart wearable device as described in claim 14, characterized in that, When the mode setting type is determined to be distribution mode, controlling the main device to perform distribution includes: When the main device receives a selection signal triggered by the user through the network operation page, it matches the corresponding network. When the main device receives the network information input by the user through the network operation page, it performs network configuration based on the network information.

16. The pairing control method for a smart wearable device as described in claim 1, characterized in that, The smart wearable device also includes a charging case; when the main device and the slave device are placed into the charging case, the main device and the slave device are respectively connected to the charging case for communication. The charging case has a user input operation component. When the user input operation component is triggered by the user, a mode setting trigger command representing pairing is generated. Upon receiving a mode setting trigger command, determining the mode setting type based on the mode setting trigger command includes: When the charging case receives a mode setting trigger command triggered by the user, indicating that it is paired with the external device, it determines the mode setting type to be pairing mode based on the mode setting trigger command.

17. The pairing control method for a smart wearable device as described in claim 16, characterized in that, The pairing control method for the smart wearable device also includes: When the mode setting type is determined to be pairing mode, the slave device will pair with the external device upon receiving a pairing connection request signal sent by the external device.

18. The pairing control method for a smart wearable device as described in claim 1, characterized in that, The main device has a Bluetooth operation page, and when a mode setting trigger command is received, determining the mode setting type according to the mode setting trigger command includes: When the master device receives a mode setting trigger command triggered by the user through the Bluetooth operation page, indicating that the mode setting type is a pairing mode, it determines the mode setting type as a pairing mode based on the mode setting trigger command.

19. The pairing control method for a smart wearable device as described in claim 18, characterized in that, The pairing control method for the smart wearable device also includes: When the master device receives a selection signal triggered by the user through the Bluetooth operation page, it determines the Bluetooth address based on the selection signal and pairs with the external device corresponding to the Bluetooth address.

20. A control device, characterized in that, The control device includes: a memory, a processor, and a computer program stored in the memory and executable on the processor, the computer program being configured to implement the steps of the pairing control method for the smart wearable device as described in any one of claims 1 to 19.

21. A smart wearable device, characterized in that, The smart wearable device includes the control device as described in claim 20.

22. The smart wearable device as described in claim 21, characterized in that, The smart wearable device includes a master device, a slave device, and a charging case; The master device and the slave device are respectively electrically connected to the charging box.

23. A storage medium, characterized in that, The storage medium is a computer-readable storage medium, on which a computer program is stored, and when the computer program is executed by a processor, it implements the steps of the pairing control method for a smart wearable device as described in any one of claims 1 to 19.