A device control method and wireless earphone
Patent Information
- Application Number
- CN202510330178.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2026-09-22
AI Technical Summary
然而,用户在设置无线耳机的模式的过程中,需要在与无线耳机连接的终端设备的蓝牙设置中找到无线耳机的选项,并进入相应的详情页才能设置,操作步骤非常多,人机交互效率低,便捷性较低
Smart Images

Figure CN122802830A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electronic equipment technology, and in particular to a device control method and a wireless headset. Background Technology
[0002] With the rapid development of electronic devices, people are increasingly pursuing smarter, more functional, and more user-friendly lifestyles. Wireless headphones, as the primary audio signal transmission tool in wearable devices, are widely used. Typically, when a user wears wireless headphones, the headphones can communicate with the terminal device using wireless communication technology, allowing the user to hear the audio information played by the terminal device.
[0003] Typically, wireless headphones support noise reduction. For example, users can configure the headphone's mode using a connected device. Taking a mobile phone as an example, a user can set the headphone to noise-canceling mode (reducing ambient noise) to obtain higher-quality audio in noisy environments. However, setting the headphone mode involves numerous steps: finding the wireless headphone option in the Bluetooth settings of the connected device and navigating to the corresponding details page. This process is inefficient and lacks convenience. Summary of the Invention
[0004] This application provides a device control method and wireless earphones, the earphone case including a display screen. Users can operate the earphones on the display screen to select the operating mode. This eliminates the need for cumbersome user operations for mode selection, improving convenience and user experience.
[0005] To achieve the above objectives, this application adopts the following technical solution:
[0006] In a first aspect, this application provides a device control method applied to wireless earphones. The wireless earphones include an earphone case and an earphone body, the earphone case including a display screen. The method includes:
[0007] In response to a trigger operation on the display screen, the earphone case displays a first interface; wherein the first interface includes: mode elements of multiple working modes in the wireless earphone, the multiple working modes including the first mode;
[0008] In response to the selection operation of the mode element corresponding to the first mode, the earphone body operates using the mode parameters corresponding to the first mode. The mode parameters are different for different operating modes.
[0009] Therefore, the earphone case provided in this application embodiment includes a display screen. Users can operate on the display screen of the earphone case to select the working mode of the wireless earphones. The earphones themselves can operate according to the mode parameters corresponding to the user-selected working mode. This eliminates the need for users to perform cumbersome operations to select modes, improving convenience and user experience.
[0010] In one possible implementation, multiple operating modes correspond to different usage scenarios for wireless earphones, including sports, do not disturb, gaming, music, call, driving, and sleep scenarios.
[0011] Therefore, this application provides multiple working modes for wireless earphones, each corresponding to different usage scenarios. Different modes can meet the specific needs of users in various scenarios, while requiring no complex setup and offering simple and convenient operation, thereby enhancing the user experience.
[0012] In one possible implementation, the first interface further includes a dynamic scene image that changes as the selected operating mode changes, and the dynamic scene image is used to indicate the scene corresponding to the wireless headphones in the operating mode.
[0013] Thus, in this embodiment, the first interface also includes dynamic scene images, which change with the selected working mode and are related to the usage scenario of the wireless headphones. This not only increases the fun but also enhances the emotional connection between the wireless headphones and the user, improving human-computer interaction.
[0014] In one possible implementation, multiple working modes are displayed around a dynamic scene image.
[0015] Thus, in this embodiment, the mode elements of multiple working modes in the first interface can be displayed around the dynamic scene image. The mode elements surrounding the image break the monotony of a conventional layout, making the first interface more dynamic and lively, thereby enhancing visual appeal and the user's visual experience.
[0016] In one possible implementation, the first interface further includes a guide identifier. The selection operation for the mode element corresponding to the first mode includes moving the mode element corresponding to the first mode so that the mode element corresponding to the first mode corresponds to the guide identifier.
[0017] Therefore, in this embodiment, the first interface may also include guidance icons to guide the user to select the corresponding working mode. Users can select the corresponding mode using a scroll wheel or turntable, breaking the monotony of conventional selection methods and enhancing user engagement and enjoyment, thereby improving the user experience.
[0018] In one possible implementation, before displaying the first interface in response to a triggering operation on the display screen, the method further includes: the headphone case displaying an initial interface, which includes an animated character;
[0019] In response to a trigger operation on the display screen, the headphone case displays a first interface, including: in response to a trigger operation on an animated character, the headphone case displays a first interface.
[0020] Thus, in this embodiment, the display screen of the earphone case can show an emotionally charged animated character on the initial interface. This animated character is a specific character, possessing emotional attributes and capable of conveying certain human emotions. This enhances the emotional connection between the wireless earphones and the user, and promotes user engagement.
[0021] In one possible implementation, before the earphone body operates using the mode parameters corresponding to the first mode, the method further includes: the earphone body acquiring the mode parameters corresponding to the first mode, the mode parameters including at least one of sound effect parameters, noise reduction parameters, or transparency parameters.
[0022] Thus, in this embodiment, the earphone body can obtain mode parameters corresponding to the first mode, including at least one of sound effect parameters, noise reduction parameters, or transparency parameters. Subsequently, the earphone body can operate according to at least one of these parameters. In this way, by adjusting the played sound across multiple dimensions corresponding to various parameters in the mode parameters, the played sound can be better adapted to different usage scenarios and user habits. Furthermore, this improves the scenario adaptability of the wireless earphones and meets user needs.
[0023] In one possible implementation, in response to a selection operation of a mode element corresponding to the first mode, the method further includes: the earphone box sending a mode identifier of the first mode to a terminal device connected to the wireless earphone.
[0024] The earphone itself obtains the mode parameters corresponding to the first mode, including: the mode parameters corresponding to the first mode returned by the terminal device.
[0025] Thus, in this embodiment, the earphone case can indirectly control the earphone body through a terminal device connected to the wireless earphones. The terminal device can act as a management center for mode parameters, more effectively establishing a reliable connection with the earphone case and the earphone body, improving connection stability and compatibility. Simultaneously, it also increases the device interoperability between the wireless earphones and the terminal device.
[0026] In one possible implementation, the earphone case stores mode parameters corresponding to multiple operating modes, and the earphone itself obtains the mode parameters corresponding to the first mode, including receiving the mode parameters corresponding to the first mode sent by the earphone case.
[0027] Thus, in this embodiment, the earphone case can directly control the earphone itself to operate using the mode parameters corresponding to the first mode. Without relying on a terminal device, the earphone itself can respond quickly, saving data transmission time.
[0028] In one possible implementation, after the earphone body operates using the mode parameters corresponding to the first mode, the method further includes: the earphone body outputting a prompt message, the prompt message indicating that the first mode has been entered.
[0029] Thus, in this embodiment, the earphone itself can output prompt information, allowing the user to perceive that the wireless earphone is in its first working mode. This enables the user to understand the status of the wireless earphone, improving ease of use and enhancing the user experience.
[0030] In one possible implementation, after responding to a selection operation on the mode element corresponding to the first mode, the method further includes: the headphone box displaying a prompt message on a screen indicating that the first mode has been entered.
[0031] Thus, in this embodiment, the earphone case can display prompts, allowing users to intuitively perceive that the wireless earphones are in the first mode. This enables users to understand the status of the wireless earphones, improving ease of use and enhancing the user experience.
[0032] In one possible implementation, the multiple operating modes also include a second mode, and the method further includes: in response to a selection operation for a mode element corresponding to the second mode, the headphone body switches from the mode parameters corresponding to the first mode to the mode parameters corresponding to the second mode.
[0033] Thus, in this embodiment of the application, different modes can be switched via the display screen on the headphone case. Users are no longer required to perform cumbersome operations to select modes, improving convenience and user experience.
[0034] In one possible implementation, the audio parameters include audio parameters, sound effect parameters, equalizer parameters, and compression ratio parameters; the noise reduction parameters include noise reduction depth, noise reduction frequency band, and wind noise reduction parameters; and the transparency parameters include ambient sound dynamic range parameters, sound change response speed, and human voice enhancement parameters.
[0035] Secondly, embodiments of this application also provide a device control method applied to a terminal device, the method comprising:
[0036] The terminal device receives a mode identifier for the first mode sent by the earphone case in the wireless earphone, where the first mode is the working mode of the wireless earphone selected by the user.
[0037] The terminal device sends the mode parameters corresponding to the first mode to the earphone body in the wireless earphone according to the mode identifier of the first mode.
[0038] Thus, the terminal device in this embodiment can serve as a management center for mode parameters, more effectively establishing a reliable connection with the earphone case and the earphone itself, improving connection stability and compatibility. Simultaneously, it also increases the device interoperability between the wireless earphones and the terminal device. Consequently, users can select modes through the earphone case, enhancing user convenience.
[0039] Thirdly, embodiments of this application also provide a device control method applied to an earphone case in a wireless earphone, the earphone case including a display screen, the method comprising:
[0040] In response to a trigger operation on the display screen, a first interface is displayed; wherein the first interface includes: mode elements of multiple working modes in the wireless headset, the multiple working modes including the first mode;
[0041] In response to the selection operation of the mode element corresponding to the first mode, the mode identifier of the first mode is sent to the terminal device.
[0042] Therefore, the earphone case provided in this application embodiment includes a display screen. Users can operate on the display screen of the earphone case to select the working mode of the wireless earphones. The earphones themselves can operate according to the mode parameters corresponding to the user-selected working mode. This eliminates the need for users to perform cumbersome operations to select modes, improving convenience and user experience.
[0043] Fourthly, embodiments of this application also provide a device control method applied to a communication system. The communication system includes a wireless headset and a terminal device. The wireless headset includes a headset case and a headset body. The headset case includes a display screen. The method includes:
[0044] The earphone case responds to a trigger operation on the display screen and displays a first interface; wherein the first interface includes mode elements of multiple working modes of the wireless earphone, the multiple working modes including the first mode.
[0045] In response to the selection operation of the mode element corresponding to the first mode, the earphone box sends the mode identifier of the first mode to the terminal device;
[0046] The terminal device receives the mode identifier of the first mode sent by the headphone box.
[0047] The terminal device sends the mode parameters corresponding to the first mode to the earphone body according to the mode identifier of the first mode. The earphone body operates using the mode parameters corresponding to the first mode.
[0048] Therefore, the earphone case provided in this application embodiment includes a display screen. Users can operate on the display screen of the earphone case to select the working mode of the wireless earphones. Specifically, the terminal device can act as a management center for mode parameters, more effectively establishing a reliable connection between the earphone case and the earphones themselves, improving connection stability and compatibility. Thus, users are no longer required to perform cumbersome operations to select modes, improving convenience and user experience.
[0049] Fifthly, embodiments of this application also provide a communication system, which includes a wireless headset and a terminal device. The wireless headset includes a headset case and a headset body, and the headset case includes a display screen.
[0050] The earphone case is configured to display a first interface in response to a trigger operation on the display screen; wherein the first interface includes mode elements of multiple operating modes of the wireless earphones, the multiple operating modes including the first mode.
[0051] The earphone case is configured to send a mode identifier of the first mode to the terminal device in response to a selection operation of the mode element corresponding to the first mode.
[0052] The terminal device is configured to receive a mode identifier of the first mode sent by the headphone box.
[0053] The terminal device is also configured to send the mode parameters corresponding to the first mode to the headset body according to the mode identifier of the first mode.
[0054] The earphone itself is configured to operate using the mode parameters corresponding to the first mode.
[0055] Thus, the earphone case in the communication system provided in this application includes a display screen. Users can operate on the display screen of the earphone case to select the working mode of the wireless earphones. Specifically, the terminal device in the communication system can act as a management center for mode parameters, more effectively establishing a reliable connection with the earphone case and the earphone itself, improving connection stability and compatibility. Therefore, users are no longer required to perform cumbersome operations to select modes, improving convenience and user experience.
[0056] Sixthly, embodiments of this application also provide a terminal device, which includes a memory and one or more processors; the memory is coupled to the processors; wherein the memory stores computer program code, which includes computer instructions, and when the computer instructions are executed by the processor, the terminal device performs the device control method as described in the second aspect.
[0057] In a seventh aspect, embodiments of this application also provide a wireless headset, which includes a display screen, a memory, and one or more processors; the display screen, the memory, and the processors are coupled; wherein the memory stores computer program code, which includes computer instructions, and when the computer instructions are executed by the processor, the wireless headset performs the device control method as described in the first aspect.
[0058] Eighthly, embodiments of this application also provide an earphone case, which includes a display screen, a memory, and one or more processors; the display screen, the memory, and the processors are coupled; wherein the memory stores computer program code, which includes computer instructions, and when the computer instructions are executed by the processor, the wireless earphones perform the device control method as described in the third aspect.
[0059] In a ninth aspect, embodiments of this application also provide a computer-readable storage medium storing instructions that, when executed on a computer, enable the computer to perform the device control method as described in the first or second aspect. Attached Figure Description
[0060] Figure 1 This application provides a schematic diagram of a user using a wearable device as an embodiment of the present application.
[0061] Figure 2 A schematic diagram of the structure of the earphone body (left earphone body or right earphone body) of a wireless earphone provided in an embodiment of this application;
[0062] Figure 3 This is a schematic diagram of the structure of an earphone case provided in an embodiment of this application;
[0063] Figure 4 A schematic flowchart illustrating a device control method provided in an embodiment of this application;
[0064] Figure 5 A schematic diagram of an initial interface provided for an embodiment of this application;
[0065] Figure 6 A schematic diagram of a different interface mode provided for an embodiment of this application;
[0066] Figure 7 A schematic diagram of an interface for a first dynamic scene image and a second dynamic scene image provided in an embodiment of this application;
[0067] Figure 8 A schematic diagram of a first interface provided in an embodiment of this application;
[0068] Figure 9A schematic diagram of a guide icon provided for an embodiment of this application;
[0069] Figure 10 An interactive schematic diagram of an earphone case, a terminal device, and an earphone body provided for embodiments of this application;
[0070] Figure 11 This is a schematic diagram of a prompting information interface provided in an embodiment of this application;
[0071] Figure 12 This is a schematic diagram of the hardware structure of a wireless earphone provided in an embodiment of this application. Detailed Implementation
[0072] The technical solutions of the embodiments of this application will be described below with reference to the accompanying drawings. In the description of this application, unless otherwise stated, " / " indicates that the objects before and after are in an "or" relationship. For example, A / B can represent A or B. "And / or" in this application is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A alone, A and B simultaneously, and B alone, where A and B can be singular or plural. Furthermore, in the description of this application, unless otherwise stated, "multiple" refers to two or more. "At least one of the following" or similar expressions refer to any combination of these items, including any combination of single or plural items. For example, at least one of a, b, or c can represent: a, b, c, ab, ac, bc, or abc, where a, b, and c can be single or multiple. In addition, in order to clearly describe the technical solutions of the embodiments of this application, the terms "first" and "second" are used in the embodiments of this application to distinguish the same or similar items with basically the same function and effect.
[0073] Those skilled in the art will understand that the terms "first," "second," etc., do not limit the quantity or order of execution, and that "first," "second," etc., are not necessarily different. Furthermore, in some embodiments of this application, words such as "exemplary" or "for example" are used to indicate that something is being described as an example, illustration, or description. Any embodiment or design scheme described as "exemplary" or "for example" in the embodiments of this application should not be construed as being more preferred or advantageous than other embodiments or design schemes. Specifically, the use of words such as "exemplary" or "for example" is intended to present the relevant concepts in a concrete manner for ease of understanding.
[0074] Furthermore, the device architecture and business scenarios described in the embodiments of this application are for the purpose of more clearly illustrating the technical solutions of the embodiments of this application, and do not constitute a limitation on the technical solutions provided in the embodiments of this application. As those skilled in the art will know, with the evolution of device architecture and the emergence of new business scenarios, the technical solutions provided in the embodiments of this application are also applicable to similar technical problems.
[0075] Currently, with the rapid development of artificial intelligence technology, wearable devices are becoming increasingly common. Many users may wear wearable devices every day, and for extended periods of time. These wearable devices are small and convenient, allowing users to listen to audio, make voice calls, and even sing along with others.
[0076] In the embodiments of this application, wearable devices may include wireless headphones, smart glasses, augmented reality (AR) glasses, virtual reality (VR) glasses, VR headsets, and AR headsets, etc.
[0077] Figure 1 The illustration depicts a scenario where a user is using a wearable device. This application uses a wireless headset as an example of a wearable device; see [link / reference]. Figure 1 In the example (A), the wireless earphones eliminate the need for wired connections and typically consist of two earphone bodies 12 (e.g., a left earphone body 121 and a right earphone body 122). Both the left and right earphone bodies 121 and 122 include an earphone stem 123 and an earphone cap 124, with the cap 124 positioned at the top of the stem 123. The wireless earphones also come with a charging case 11, which serves both charging and storage functions. The case 11 provides power to both earphone bodies 12 and provides storage. When using the wireless earphones, users usually need to remove the left and right earphone bodies 121 and 122 from the case 11 and then place them on their ears.
[0078] The wireless earphones in this application embodiment can be Bluetooth earphones, such as over-ear Bluetooth earphones, neckband Bluetooth earphones, earphone-type Bluetooth earphones, ear-hook Bluetooth earphones, and wireless earphones, etc.
[0079] See Figure 1In section (B), to enable users to interact with wearable devices more conveniently and accurately, this application will use wireless earphones as an example for specific explanation. After the user has worn both earphone bodies 12, the user can use the terminal device 20 to control the two earphone bodies 12. This allows the user to interact indirectly with the wireless earphones. For example, the terminal device 20 connects the two earphone bodies 12 via Bluetooth, allowing the user to listen to notifications, reminders, etc., while wearing the earphone bodies 12. The user can also listen to music, audiobooks, and control intelligent voice assistants.
[0080] Meanwhile, when the earbuds 12 are low on power, the user simply places them into the charging case 11. The earbuds 12 automatically disconnect from the terminal device 20 via Bluetooth, and the charging case 11 then charges them. During the connection process between the terminal device 20 and the earbuds 12, the terminal device 20 can prioritize connecting to the left earbud 121, which then connects to the right earbud 122 via Bluetooth, enabling wireless separation of the left and right channels. Similarly, the terminal device 20 can prioritize connecting to the right earbud 122, which then connects to the left earbud 121 via Bluetooth. Furthermore, either earbud 12 can operate independently. For example, when the right earbud 122 is not connected to the left earbud 121, the left earbud 121 can revert to mono sound quality, allowing for independent use of a single earbud.
[0081] For example, the terminal device 20 in this application embodiment can be a portable computer (such as a mobile phone), tablet computer, laptop computer, personal computer (PC), augmented reality (AR) / virtual reality (VR) device, in-vehicle computer, etc. This application embodiment does not impose any special restrictions on the specific form of the terminal device 20.
[0082] Based on the above practical scenarios, when wearable devices such as wireless headphones are used in conjunction with the aforementioned terminal device 20, users can set the mode of the wireless headphones using the terminal device 20 connected to the wireless headphones. For example, taking a mobile phone as the terminal device 20, users can set the wireless headphones to noise cancellation mode (i.e., a mode that reduces ambient noise) to obtain higher quality audio in noisy environments. However, in setting the mode of the wireless headphones, users need to find the wireless headphone option in the Bluetooth settings of the terminal device connected to the wireless headphones and enter the corresponding details page to set it up. The operation steps are numerous, resulting in low human-computer interaction efficiency and low convenience.
[0083] To address the aforementioned technical problems, this application provides a device control method applied to wireless earphones. The wireless earphones include an earphone case and an earphone body, the earphone case including a display screen. The method includes: in response to a trigger operation on the display screen, the earphone case displays a first interface; wherein the first interface includes: mode elements of multiple operating modes in the wireless earphones, the multiple operating modes including a first mode. In response to a selection operation of the mode element corresponding to the first mode, the earphone body operates using the mode parameters corresponding to the first mode, the mode parameters corresponding to different operating modes being different.
[0084] Therefore, the earphone case provided in this application embodiment includes a display screen. Users can operate on the display screen of the earphone case to select the working mode of the wireless earphones. The earphones themselves can operate according to the mode parameters corresponding to the user-selected working mode. This eliminates the need for users to perform cumbersome operations to select modes, improving convenience and user experience.
[0085] See Figure 2 This is a schematic diagram of the structure of the earphone body (left earphone body or right earphone body) of a wireless earphone provided in an embodiment of this application. Figure 2 As shown, the wireless headset body may include: a processor 301, a memory 302, a sensor 303, a wireless communication module 304, at least one receiver 305, at least one microphone 306, and a power supply 307.
[0086] The memory 302 can be used to store application code, such as application code for establishing a Bluetooth connection with another earpiece of the wireless headset, and application code for pairing the earpiece with an electronic device, such as the terminal device 20 described above. The processor 301 can control the execution of the above application code to realize the function of the earpiece of the wireless headset in this embodiment of the application.
[0087] The memory 302 may also store a Bluetooth address that uniquely identifies the earphone unit, and the Bluetooth address of another earphone unit containing the wireless earphone. Additionally, the memory 302 may store connection data of electronic devices previously successfully paired with the earphone unit. For example, this connection data could be the Bluetooth address of an electronic device that has been successfully paired with the earphone unit. Based on this connection data, the earphone unit can automatically pair with the electronic device without needing to configure the connection, such as performing authentication. The aforementioned Bluetooth address can be a Media Access Control (MAC) address.
[0088] Sensor 303 can be a distance sensor or a proximity light sensor. The processor 301 of the earphone body can determine whether the earphone is being worn by a user through this sensor 303. For example, the processor 301 of the earphone body can use a proximity light sensor to detect whether there is an object near the earphone body, thereby determining whether the earphone body is being worn by a user. When it is determined that the earphone body is being worn, the processor 301 of the earphone body can turn on the receiver 305. In some embodiments, the earphone body may also include a bone conduction sensor, combined into a bone conduction earphone. The bone conduction sensor can acquire the vibration signal of the sound-vibrating bone block, and the processor 301 can parse the voice signal to realize the control function corresponding to the voice signal. In other embodiments, the earphone body may also include a touch sensor or a pressure sensor, used to detect the user's touch operation and pressing operation, respectively. In other embodiments, the earphone body may also include a fingerprint sensor, used to detect the user's fingerprint, identify the user's identity, etc. In other embodiments, the earphone body may also include an ambient light sensor, and the processor 301 of the earphone body can adaptively adjust some parameters, such as volume, according to the brightness of the ambient light sensed by the ambient light sensor.
[0089] The wireless communication module 304 supports short-range data interaction between the left and right earpieces of the wireless headphones, and between the earpieces and various electronic devices, such as the terminal device 20 described above. In some embodiments, the wireless communication module 304 can be a Bluetooth transceiver. The earpieces of the wireless headphones can establish a Bluetooth connection with the terminal device 20 through the Bluetooth transceiver to achieve short-range data interaction between them. The earpieces of the wireless headphones can also establish a Bluetooth connection with another earpiece through the Bluetooth transceiver to achieve short-range data interaction between them.
[0090] The receiver 305, also known as a "handpiece," is used to convert audio electrical signals into sound signals and play them. These audio electrical signals are audio data, which may include the voice data described in this embodiment. For example, when the earpiece of a wireless headset acts as the audio input / output device of the aforementioned terminal device 20 for making a call, the receiver 305 can convert the received voice data into sound signals and play them.
[0091] Microphone 306, also known as a "microphone" or "voice transducer," is used to convert sound signals into audio electrical signals. For example, when the earpiece of a wireless headset acts as an audio input / output device for the aforementioned terminal device 20 to make a call, microphone 306 can capture the user's voice signal and convert it into an audio electrical signal when the user speaks (such as making a call or sending a voice message).
[0092] The power supply 307 can be used to power the various components included in the earpiece of the wireless earphone. In some embodiments, the power supply 307 can be a battery, such as a rechargeable battery.
[0093] Typically, wireless earphones come with an earphone case (e.g., Figure 1 The headphone case 11 shown. Figure 3 As shown, the earphone case 11 may include a cavity 401-1 and a lid 401-2. The cavity 401-1 can be used to store the left and right earphone bodies of the wireless earphones. (As shown in the diagram...) Figure 1 and Figure 2 ,like Figure 3 As shown, the cavity 401-1 of the earphone case 11 can be used to store the earphone body 12 of the wireless earphones. Additionally, the earphone case 11 can also charge the left and right earphone bodies of the wireless earphones. Accordingly, in some embodiments, the earphone body of the aforementioned wireless earphones may further include an input / output interface 308.
[0094] The input / output interface 308 can be used to provide any wired connection between the earpiece of the wireless earphone and the earphone case (such as the cavity 401-1 of the earphone case 11 described above). In some embodiments, the input / output interface 308 can be an electrical connector. For example, when the earpiece of the wireless earphone is placed in the cavity 401-1 of the earphone case 11, the earpiece of the wireless earphone can be electrically connected to the earphone case 11 (such as to the input / output interface of the earphone case 11) through the electrical connector. After the electrical connection is established, the earphone case 11 can charge the power supply 307 of the earpiece of the wireless earphone. After the electrical connection is established, the earpiece of the wireless earphone can also communicate data with the earphone case 11. For example, the processor 301 of the earpiece of the wireless earphone can receive a pairing command from the earphone case 11 through the electrical connection. The pairing command is used to instruct the processor 301 of the earpiece of the wireless earphone to turn on the wireless communication module 304, so that the earpiece of the wireless earphone can pair with the terminal device 20 using a corresponding wireless communication protocol (such as Bluetooth).
[0095] Of course, the earphone body of the aforementioned wireless earphone may also omit the input / output interface 308. In this case, the earphone body can realize charging or data communication functions based on the Bluetooth connection established between the aforementioned wireless communication module 304 and the earphone case 11.
[0096] In some embodiments, the earphone case 11 may also include components such as a processor and a memory. The memory can be used to store application code, which is then executed by the processor of the earphone case 11 to realize the functions of the earphone case 11. For example, when a user opens the lid 401-2 of the earphone case 11, the processor of the earphone case 11 executes the application code stored in the memory, and can send pairing commands to the earphones in response to the user opening the lid 401-2.
[0097] In some embodiments, the headphone case 11 may further include a display screen 402 for displaying a user interface. The user can select the operating mode of the wireless headphones through the user interface. A processor in the headphone case 11 can determine the operating mode of the wireless headphones in response to operations on the display screen. The processor in the headphone case 11 can control the headphones to operate using the determined mode parameters.
[0098] It is understood that the structures illustrated in the embodiments of this application do not constitute a specific limitation on the earphone body of the wireless earphone. It may have more than Figure 3 The more or fewer components shown can be combined into two or more components, or they can have different component configurations. For example, the earphone case may also include indicator lights, and the earphones themselves may include indicator lights (which can indicate the battery level and other status of the earphones), dust filters (which can be used with the earpieces), and other components. Figure 3 The various components shown can be implemented in hardware, software, or a combination of hardware and software, including one or more signal processing or application-specific integrated circuits.
[0099] The following is in conjunction with the above Figure 1 The application scenario shown will use a wireless headset as an example to illustrate the device control method provided in this application embodiment. Figure 4 This is a schematic flowchart illustrating a device control method according to an embodiment of this application, as shown below. Figure 4 As shown, the method may include the following steps S401-S402.
[0100] S401, the wireless earphones respond to a trigger operation on the display screen and display a first interface via the earphone case.
[0101] The first interface includes mode elements for multiple working modes in the wireless earphone, including the first mode.
[0102] In some embodiments of this application, a user can activate the display screen of the headphone case, triggering entry into the initial interface of the display screen. In response to the user's activation, the headphone case displays the initial interface, which includes animated characters.
[0103] The activation operation may include user actions on the display screen, such as clicking. The activation operation may also include voice commands to activate the display screen. This application does not limit this aspect.
[0104] See in some examples Figure 5 In step (A), the user can tap the display screen on the headphone case. The headphone case responds to the user's tap by displaying the initial interface, such as... Figure 5 (B) The initial interface may include animated characters. Animated characters include human characters, animal characters, and abstract characters with dynamic effects. Abstract characters are usually composed of simple geometric shapes or lines and are used to express abstract concepts or emotions.
[0105] Characters can include dynamic expressions, such as facial expressions, dynamic changes in body movements, and combinations of these movements with facial expressions. Of course, animated characters can have various styles, such as realistic, exaggerated, and cute styles. See also... Figure 5 In (B), the animated character provided in this application is a cute-style dynamic expression, in which the character smiles while blinking one eye.
[0106] In some examples, the headphone case may include a camera that can capture the user's facial expressions and display an animated character on the initial interface based on those expressions. In other words, the animated character can be associated with the user's current facial expression.
[0107] For example, the user's current facial expression is a smiling expression, and the animated character is a cute animated character with a smiling face.
[0108] For example, the user's current facial expression is a pouting expression, and the animated character is a cute animated character with pursed lips. It should be noted that the process of displaying the animated character on the initial interface based on the user's facial expression in this application can utilize facial expression recognition technology and animated character matching and display technology; this application does not impose specific limitations on this.
[0109] It should be noted that the initial interface in this application embodiment may display other types of dynamic images besides animated characters, and there is no limitation on this.
[0110] Thus, in this embodiment, the display screen of the earphone case can show an emotionally charged animated character on the initial interface. This animated character is a specific character, possessing emotional attributes and capable of conveying certain human emotions. This enhances the emotional connection between the wireless earphones and the user, and promotes user engagement.
[0111] In some embodiments of this application, the earphone case can display a first interface in response to a trigger operation on an animated character. The first interface includes mode elements representing multiple operating modes of the wireless earphones.
[0112] For example, trigger actions for animated characters include user clicks, long presses, and voice commands.
[0113] In one possible implementation, the headphone case can display a primary interface in response to a user's click on the animated character. See also Figure 6 In section (A), the first interface can include mode elements representing multiple working modes. These mode elements are arranged linearly. Mode elements can be presented as text controls, such as Standard Mode, Sports Mode, Do Not Disturb Mode, Game Mode, Music Mode, Call Mode, Driving Mode, and Sleep Mode. Standard Mode can be understood as the default mode for wireless headphones, meaning the headphones do not require sound processing, ambient noise reduction, or specific sound enhancement.
[0114] In another possible implementation, the headphone case can respond to a user's click on the animated character, displaying a first interface. This first interface can include mode elements representing multiple operating modes. See also... Figure 6 In (B), multiple mode elements are arranged in a circular pattern. Similarly, mode elements can be presented as text controls. Therefore, users can select any mode element to choose the corresponding operating mode for the wireless headphones.
[0115] Thus, in this embodiment, the display screen of the earphone case can show a first interface, allowing the user to directly select the working mode of the wireless earphones. The operation is simple and convenient, and the wireless earphones can quickly enter the selected working mode. This improves human-computer interaction efficiency and the user experience.
[0116] In some embodiments of this application, the working modes of the wireless earphones can be configured according to different usage scenarios and user needs to provide a more customized setting that better suits the user experience in specific scenarios. Multiple working modes correspond to different usage scenarios for the wireless earphones, including sports, do-not-disturb, gaming, music, call, and sleep scenarios.
[0117] For example, sports mode corresponds to sports scenarios, do not disturb mode corresponds to do not disturb scenarios, game mode corresponds to game scenarios, music mode corresponds to music scenarios, call mode corresponds to call scenarios, driving mode corresponds to driving scenarios, and sleep mode corresponds to sleep scenarios.
[0118] For example, a typical user might want to wear wireless headphones during exercise to isolate themselves from ambient noise and focus on their workout. In this case, the user can control the wireless headphones to enter sports mode. Once in sports mode, the headphones will operate according to the corresponding mode parameters to actively reduce ambient noise while allowing the user to hear key sounds from their surroundings (such as shouts from others or car horns).
[0119] For example, in gaming scenarios, users often want wireless headphones to enhance sound effects to improve the gaming audio experience. In this case, users can control their wireless headphones to enter game mode. Once in game mode, the wireless headphones can operate according to the corresponding mode parameters to actively reduce ambient noise and adjust sound effects for the specific game scenario, enhancing details of specific sounds such as footsteps and gunshots.
[0120] For example, typical users want wireless headphones to eliminate ambient noise and create a quiet sleeping environment when they want to sleep. In this case, users can control the wireless headphones to enter sleep mode. Once in sleep mode, the wireless headphones can operate according to the corresponding mode parameters to actively reduce ambient noise and play sleep-aiding audio.
[0121] Therefore, this application provides multiple working modes for wireless earphones, each corresponding to different usage scenarios. Different modes can meet the specific needs of users in various scenarios, while requiring no complex setup and offering simple and convenient operation, thereby enhancing the user experience.
[0122] In some embodiments of this application, the first interface further includes: a dynamic scene image, which changes with the selected working mode, and the dynamic scene image is used to indicate the scene corresponding to the wireless headphones in the working mode.
[0123] For example, in addition to multiple modal elements, the first interface may also include dynamic scene images. See [link / reference] Figure 7 In (A), when the user selects the first mode, the headphone box responds to the selection operation by displaying a first dynamic scene image. The first mode can be a Do Not Disturb mode, and the first dynamic scene image can depict a person picking up a book and reading. It is understandable that the first dynamic scene image can be associated with the work scenario corresponding to the first mode. For example, in Do Not Disturb mode, the first dynamic scene image can depict the reading process mentioned above, or it can depict the process of picking up a laptop and working.
[0124] See Figure 7In (B), when the user selects the second mode, the headphone box responds to the selection operation by displaying a second dynamic scene image with a second effect. The second mode can be a motion mode, and the second dynamic scene image can depict a person wearing a hat and swaying it. It is understood that the second dynamic scene image can be associated with the work scenario corresponding to the second mode. For example, in motion mode, the second dynamic scene image can depict the aforementioned hat-wearing and swaying process, or it can depict a person waving their arms.
[0125] Thus, in this embodiment, the first interface also includes dynamic scene images, which change with the selected working mode and are related to the usage scenario of the wireless headphones. This not only increases the fun but also enhances the emotional connection between the wireless headphones and the user, improving human-computer interaction.
[0126] In some embodiments of this application, mode elements of multiple working modes are displayed around a dynamic scene image.
[0127] For example, see Figure 8 In (A), multiple working mode elements can be displayed around the dynamic scene image. The dynamic scene image is located in the center of the display screen, and the multiple working mode elements can be arranged in a circular pattern around the dynamic scene image.
[0128] For another example, see Figure 8 In (B), multiple working mode elements can also be linearly arranged and displayed with dynamic scene images. This application does not limit the specific implementation corresponding to the first interface.
[0129] Thus, in this embodiment, the mode elements of multiple working modes in the first interface can be displayed around the dynamic scene image. The mode elements surrounding the image break the monotony of conventional layouts, making the first interface more dynamic and lively, thereby enhancing visual appeal and the user's visual experience.
[0130] S402. In response to the selection operation of the mode element corresponding to the first mode, the wireless earphone operates by using the mode parameters corresponding to the first mode through the earphone body. The mode parameters are different for different working modes.
[0131] In some embodiments of this application, the user can select any mode element in the first interface to cause the wireless earphones to execute the corresponding working mode. The earphone case can respond to the selection operation of the mode element corresponding to the first mode and determine that the desired working mode is the first mode.
[0132] In some examples, the first interface also includes a guide icon. The user can select a first mode (motion mode) from multiple operating modes. The selection operation for the mode element corresponding to the first mode can include moving the mode element so that it aligns with the guide icon.
[0133] For example, see Figure 9 In section (A), the guide icon can be an arrow located at the top of the first interface, pointing towards the center of the display screen. The game mode element is located on the right side of the first interface. Users can move the game mode element below the arrow so that the corresponding game mode element aligns with the arrow, such as... Figure 9 (B) in the middle.
[0134] Of course, see below. Figure 8 In step (B), the user can also directly select a mode element of the first mode to complete the selection operation for the corresponding mode element of the first mode. This application embodiment does not specifically limit the selection operation for the mode element of the first mode.
[0135] Therefore, in this embodiment, the first interface may also include guidance icons to guide the user to select the corresponding working mode. Users can select the corresponding mode using a scroll wheel or turntable, breaking the monotony of conventional selection methods and enhancing user engagement and enjoyment, thereby improving the user experience.
[0136] In some embodiments of this application, the earphone body can obtain mode parameters corresponding to the first mode, including at least one of sound effect parameters, noise reduction parameters, or transparency parameters.
[0137] Thus, in this embodiment, the earphone body can obtain the mode parameters corresponding to the first mode, which include at least one of sound effect parameters, noise reduction parameters, or transparency parameters. Subsequently, the earphone body can operate according to at least one of these parameters. For example, the mode parameters for sleep mode and game mode are different, and the earphone body can operate according to the different mode parameters for each mode. In this way, by adjusting the played sound through multiple dimensions corresponding to various parameters in the mode parameters, the played sound can be made more suitable for different usage scenarios and the user's usage habits in those scenarios. Furthermore, this improves the scenario adaptability of the wireless earphones and meets user needs.
[0138] In some examples, the earphone case can, in response to a selection operation of the mode element corresponding to the first mode, indirectly control the earphone itself to operate using the mode parameters corresponding to the first mode via a terminal device connected to the wireless earphone. In other words, the earphone itself can obtain the mode parameters corresponding to the first mode from the terminal device connected to the wireless earphone.
[0139] Specifically, the terminal device connected to the wireless earphones has preset mode parameters corresponding to multiple operating modes. The earphone case can indirectly control the earphones themselves through the terminal device connected to the wireless earphones. The terminal device connected to the wireless earphones can find the mode parameters corresponding to the first mode and control the earphones to operate according to the mode parameters corresponding to the first mode.
[0140] See Figure 10 In response to the selection operation of the mode element corresponding to the first mode, the earphone box sends a mode identifier of the first mode to the terminal device connected to the wireless earphone (S1001). The terminal device receives the mode identifier of the first mode and determines the mode parameters corresponding to the first mode based on the mode identifier (S1002). The terminal device sends the mode parameters corresponding to the first mode to the earphone body (S1003). The earphone body receives the mode parameters corresponding to the first mode returned by the terminal device and operates using the mode parameters corresponding to the first mode (S1004). The aforementioned mode identifier is used to identify any name or symbol of the first mode. This application does not specifically limit its use.
[0141] Thus, in this embodiment, the terminal device connected to the wireless earphones can have multiple preset mode parameters corresponding to different operating modes. The earphone case can indirectly control the earphones themselves through the terminal device connected to the wireless earphones. The terminal device can act as a management center for the mode parameters, more effectively establishing a reliable connection with the earphone case and the earphones, improving connection stability and compatibility. Simultaneously, it can also increase the device interoperability between the wireless earphones and the terminal device.
[0142] In other examples, the charging case can respond to a selection operation of the mode element corresponding to the first mode, directly controlling the earphones to operate using the mode parameters corresponding to the first mode. In other words, the earphones can obtain the mode parameters corresponding to the first mode from the charging case.
[0143] Specifically, the earphone case stores mode parameters corresponding to multiple operating modes. In response to a selection operation of the mode element corresponding to the first mode, the earphone case can look up the mode parameters corresponding to the first mode and send these parameters to the earphone itself. The earphone itself receives the mode parameters corresponding to the first mode sent by the earphone case.
[0144] Thus, in this embodiment, the earphone case can store mode parameters corresponding to multiple operating modes. The earphone case can directly control the earphone itself to operate using the mode parameters corresponding to the first mode. Without relying on a terminal device, the earphone itself can respond quickly, saving data transmission time.
[0145] In some embodiments of this application, the sound effect parameters include audio parameters, sound effect parameters, equalizer parameters, and compression ratio parameters; the noise reduction parameters include noise reduction depth, noise reduction frequency band, and wind noise reduction parameters; and the transparency parameters include ambient sound dynamic range parameters, sound change response speed, and human voice enhancement parameters.
[0146] In other words, different working modes correspond to different mode parameters. Specifically, different working modes correspond to some or all of the audio effect parameters, some or all of the noise reduction parameters, and some or all of the transparency parameters.
[0147] In this embodiment, sample data can be acquired, which can be audio data from different users in different scenarios. Then, the sample data can be used for environmental noise analysis and user comfort preference analysis to configure mode parameters corresponding to different working modes. For example, the wind noise reduction parameter for Do Not Disturb mode can be set higher than that for driving scenarios. As another example, the sound effect parameters for a specific sound in game mode can be set higher than those for a specific sound in sleep mode. This embodiment does not specifically limit the process of configuring mode parameters corresponding to different working modes.
[0148] Thus, in this embodiment, the wireless earphones can operate using different multi-dimensional mode parameters, adapting to user scenarios and habits. This enables coordinated control of different scenarios and sound quality effects, improving the wireless earphones' scenario adaptability and user experience.
[0149] In some embodiments of this application, after the earphone body operates using the mode parameters corresponding to the first mode, the earphone body can output a prompt message to indicate that the first mode has been entered.
[0150] For example, the prompts output by the headphones themselves can be in the form of voice prompts.
[0151] Thus, in this embodiment, the earphone itself can output prompt information, allowing the user to perceive that the wireless earphone is in its first working mode. This enables the user to understand the status of the wireless earphone, improving ease of use and enhancing the user experience.
[0152] In some embodiments of this application, after responding to the selection operation of the mode element corresponding to the first mode, the earphone box displays a prompt message on the display screen, the prompt message being used to indicate that the first mode has been entered.
[0153] For example, the prompts output by the headphone box can be in the form of text prompts, image prompts, or video prompts. See also Figure 11 The first mode is game mode, and the display screen in the headphone case can show a prompt message: "Currently in game mode".
[0154] Thus, in this embodiment, the earphone case can display prompts, allowing users to intuitively perceive that the wireless earphones are in the first mode. This enables users to understand the status of the wireless earphones, improving ease of use and enhancing the user experience.
[0155] In some embodiments of this application, both the earphone case and the earphone itself may output prompt messages, or only one of them may output prompt messages. This application does not limit this.
[0156] In some embodiments of this application, after the user selects a first mode and the wireless earphone enters the first mode, the user can switch modes to control the wireless earphone to work in different modes.
[0157] Specifically, the multiple operating modes also include a second mode. In response to a selection operation of the mode element corresponding to the second mode, the earphones themselves switch from the mode parameters corresponding to the first mode to the mode parameters corresponding to the second mode.
[0158] For example, after selecting the first mode, a user can click the corresponding mode element for the second mode on the first interface of the earphone case to select the second mode. Responding to the user's click, the earphone case can also indirectly or directly control the earphones to operate using the mode parameters corresponding to the second mode. The specific implementation process of the earphone case and earphones is described in the above embodiment and will not be repeated here.
[0159] Thus, in this embodiment of the application, different modes can be switched via the display screen on the headphone case. Users are no longer required to perform cumbersome operations to select modes, improving convenience and user experience.
[0160] In some embodiments of this application, the display screen of the headphone case also supports user selection of the next / next track, audio pause and play, and audio volume adjustment. For example, the display screen can show an audio details page, which includes selection controls for the previous and next tracks, audio pause and play, and volume up and down. Users can click on different selection controls to adjust the audio track selection, pause or play the audio, or adjust the audio volume. This application does not specifically limit the interface implementation corresponding to the audio details page.
[0161] In some solutions, multiple embodiments of this application can be combined, and the combined solution can be implemented. Optionally, some operations in the process of each method embodiment may be combined, and / or the order of some operations may be changed. Furthermore, the execution order between the steps of each process is merely exemplary and does not constitute a limitation on the execution order between steps; other execution orders are also possible. It is not intended to indicate that the execution order is the only possible order in which these operations can be performed.
[0162] Those skilled in the art will conceive of various ways to reorder the operations described in the embodiments of this application. Furthermore, it should be noted that process details involved in one embodiment of this application are similarly applicable to other embodiments, or different embodiments can be combined.
[0163] Furthermore, some steps in the method embodiments can be equivalently replaced with other possible steps. Alternatively, some steps in the method embodiments may be optional and can be deleted in certain use cases. Or, other possible steps may be added to the method embodiments.
[0164] Furthermore, the various method embodiments can be implemented individually or in combination.
[0165] This application also provides a wearable device, such as the aforementioned wireless headphones, etc. Figure 12 As shown, the wireless headset may include one or more processors 1210, memory 1220 and communication interface 1230.
[0166] The memory 1220, communication interface 1230, and processor 1210 are coupled together. For example, the memory 1220, communication interface 1230, and processor 1210 can be coupled together via bus 1240.
[0167] The communication interface 1230 is used for data transmission with other devices. The memory 1220 stores computer program code. The computer program code includes computer instructions, which, when executed by the processor 1210, cause the electronic device to perform the relevant method steps in the embodiments of this application.
[0168] Processor 1210 may be a processor or controller, such as a central processing unit (CPU), a general-purpose processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA), or other programmable logic devices, transistor logic devices, hardware components, or any combination thereof. It may implement or execute the various exemplary logic blocks, modules, and circuits described in conjunction with this disclosure. The processor may also be a combination that implements computational functions, such as a combination of one or more microprocessors, a combination of a DSP and a microprocessor, etc.
[0169] Bus 1240 can be a Peripheral Component Interconnect (PCI) bus or an Extended Industry Standard Architecture (EISA) bus, etc. The aforementioned bus 1240 can be divided into address bus, data bus, control bus, etc. For ease of representation, Figure 12 The bus is represented by a single thick line, but this does not mean that there is only one bus or one type of bus.
[0170] This application also provides a device control method applied to an earphone case in a wireless earphone, the method comprising:
[0171] In response to a trigger operation on the display screen, a first interface is displayed; wherein the first interface includes mode elements of multiple operating modes in the wireless headset, the multiple operating modes including the first mode.
[0172] In response to the selection operation of the mode element corresponding to the first mode, the mode identifier of the first mode is sent to the terminal device.
[0173] This application also provides a device control method applied to a communication system. The communication system includes a wireless headset and a terminal device. The wireless headset includes a headset case and a headset body. The method includes:
[0174] The earphone case responds to a trigger operation on the display screen and displays a first interface; wherein the first interface includes mode elements of multiple working modes of the wireless earphone, the multiple working modes including the first mode.
[0175] In response to the selection operation of the mode element corresponding to the first mode, the headphone box sends the mode identifier of the first mode to the terminal device.
[0176] The terminal device receives the mode identifier of the first mode sent by the headphone box.
[0177] The terminal device sends the mode parameters corresponding to the first mode to the earphone body according to the mode identifier of the first mode;
[0178] The earphone itself operates using the mode parameters corresponding to the first mode.
[0179] This application also provides a communication system, which includes a wireless headset and a terminal device. The wireless headset includes a headset case and a headset body.
[0180] The earphone case is configured to display a first interface in response to a trigger operation on the display screen; wherein the first interface includes mode elements of multiple operating modes of the wireless earphones, the multiple operating modes including the first mode.
[0181] The earphone case is configured to send a mode identifier of the first mode to the terminal device in response to a selection operation of the mode element corresponding to the first mode.
[0182] The terminal device is configured to receive a mode identifier of the first mode sent by the headphone box.
[0183] The terminal device is also configured to send the mode parameters corresponding to the first mode to the headset body according to the mode identifier of the first mode.
[0184] The earphone itself is configured to operate using the mode parameters corresponding to the first mode.
[0185] This application also provides a wireless headset, which includes a display screen, a memory, and one or more processors; the display screen, the memory, and the processors are coupled; wherein, the memory stores computer program code, which includes computer instructions, and when the computer instructions are executed by the processor, the wireless headset performs the relevant method steps in the above method embodiments.
[0186] This application also provides an earphone case, which includes a display screen, a memory, and one or more processors; the display screen, the memory, and the processors are coupled; wherein, the memory stores computer program code, which includes computer instructions, and when the computer instructions are executed by the processor, the wireless earphones perform the relevant method steps in the above method embodiments.
[0187] This application also provides a terminal device, which includes a memory and one or more processors; the memory is coupled to the processors; wherein the memory stores computer program code, which includes computer instructions, and when the computer instructions are executed by the processor, the terminal device performs the relevant method steps in the above method embodiments.
[0188] This application also provides a communication device, which includes a memory and one or more processors; the memory is coupled to the processors; wherein the memory stores computer program code, which includes computer instructions, and when the computer instructions are executed by the processor, the communication device performs the relevant method steps in the above method embodiments.
[0189] This application also provides a computer-readable storage medium storing computer program code. When the processor executes the computer program code, the electronic device executes the relevant method steps in the above method embodiments.
[0190] This application also provides a computer program product containing instructions that, when executed on a computer or processor, cause the computer or processor to perform the relevant method steps as described in the above method embodiments.
[0191] This application also provides a chip system, including: a processor coupled to a memory, the memory being used to store programs or instructions, and when the program or instructions are executed by the processor, the chip system enables the methods in any of the above method embodiments.
[0192] Optionally, the chip system may contain one or more processors. These processors can be implemented in hardware or software. When implemented in hardware, the processor can be a logic circuit, an integrated circuit, etc. When implemented in software, the processor can be a general-purpose processor, implemented by reading software code stored in memory.
[0193] Optionally, the chip system may contain one or more memories. The memory may be integrated with the processor or disposed separately from it; this application does not limit this. For example, the memory may be a non-transient processor, such as a read-only memory (ROM), which may be integrated with the processor on the same chip or disposed separately on different chips. This application does not specifically limit the type of memory or the arrangement of the memory and processor.
[0194] For example, the chip system can be a field programmable gate array (FPGA), an application-specific integrated circuit (ASIC), a system-on-chip (SoC), a central processing unit (CPU), a network processor (NP), a digital signal processor (DSP), a micro controller unit (MCU), a programmable logic device (PLD), or other integrated chips.
[0195] The electronic devices, computer storage media, or computer program products provided in this application are all used to execute the corresponding methods provided above. Therefore, the beneficial effects they can achieve can be referred to the beneficial effects in the corresponding methods provided above, and will not be repeated here.
[0196] Through the above description of the embodiments, those skilled in the art can clearly understand that, for the sake of convenience and brevity, only the division of the above functional modules is used as an example. In actual applications, the above functions can be assigned to different functional modules as needed, that is, the internal structure of the device can be divided into different functional modules to complete all or part of the functions described above.
[0197] In the several embodiments provided in this application, it should be understood that the disclosed apparatus and methods can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for instance, the division of modules or units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another apparatus, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces; the indirect coupling or communication connection between apparatuses or units may be electrical, mechanical, or other forms.
[0198] The units described as separate components may or may not be physically separate. A component shown as a unit can be one or more physical units, located in one place or distributed in multiple different locations. Some or all of the units can be selected to achieve the purpose of this embodiment, depending on actual needs.
[0199] Furthermore, the functional units in the various embodiments of this application can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or as a software functional unit.
[0200] If the integrated unit is implemented as a software functional unit and sold or used as an independent product, it can be stored in a readable storage medium. Based on this understanding, the technical solutions of the embodiments of this application, in essence, or the contributing parts, or all or part of the technical solutions, can be embodied in the form of a software product. This software product is stored in a storage medium and includes several instructions to cause a device (which may be a microcontroller, chip, etc.) or processor to execute all or part of the steps of the methods of the various embodiments of this application. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.
[0201] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any changes or substitutions within the technical scope disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.
Claims
1. A device control method, characterized in that, Applied to wireless earphones, the wireless earphones include an earphone case and earphone bodies, the earphone case including a display screen, and comprising: In response to a trigger operation on the display screen, the earphone case displays a first interface; wherein the first interface includes: mode elements of multiple working modes in the wireless earphone, the multiple working modes including a first mode; In response to the selection operation of the mode element corresponding to the first mode, the earphone body operates using the mode parameters corresponding to the first mode, and the mode parameters are different for different operating modes.
2. The method according to claim 1, characterized in that, The multiple working modes correspond to different usage scenarios of the wireless earphones, including sports, do not disturb, gaming, music, call, driving, and sleep scenarios.
3. The method according to claim 1 or 2, characterized in that, The first interface further includes a dynamic scene image, which changes with the selected working mode and is used to indicate the scene corresponding to the wireless headphones in the working mode.
4. The method according to claim 3, characterized in that, The mode elements of the multiple working modes are displayed around the dynamic scene image.
5. The method according to claim 3 or 4, characterized in that, The first interface also includes: a guide icon; The selection operation of the mode element corresponding to the first mode includes: Move the mode element corresponding to the first mode so that the mode element corresponding to the first mode corresponds to the guide identifier.
6. The method according to any one of claims 1-5, characterized in that, Before displaying the first interface in response to a trigger operation on the display screen, the method further includes: The earphone box displays an initial interface, which includes animated characters; In response to a trigger operation on the display screen, the earphone case displays a first interface, including: In response to a trigger operation on the animated character, the headphone case displays the first interface.
7. The method according to any one of claims 1-6, characterized in that, Before the earphone body operates using the mode parameters corresponding to the first mode, the method further includes: The earphone body acquires the mode parameters corresponding to the first mode, and the mode parameters include at least one of sound effect parameters, noise reduction parameters, or transparency parameters.
8. The method according to claim 7, characterized in that, In response to the selection operation of the mode element corresponding to the first mode, the method further includes: The earphone case sends the mode identifier of the first mode to the terminal device connected to the wireless earphone; The earphone body acquires the mode parameters corresponding to the first mode, including: The earphone body receives the mode parameters corresponding to the first mode returned by the terminal device.
9. The method according to claim 7, characterized in that, The earphone case stores mode parameters corresponding to the multiple working modes. The earphone body acquires the mode parameters corresponding to the first mode, including: Receive the mode parameters corresponding to the first mode sent by the earphone box.
10. The method according to any one of claims 1-9, characterized in that, After the earphone body operates using the mode parameters corresponding to the first mode, the method further includes: The earphone itself outputs a prompt message, which indicates that the first mode has been entered.
11. The method according to any one of claims 1-10, characterized in that, Following the operation of selecting a pattern element corresponding to the first pattern, the method further includes: The earphone case displays a prompt message on the display screen, which indicates that the first mode has been entered.
12. The method according to any one of claims 1-11, characterized in that, The plurality of operating modes also includes a second mode, and the method further includes: In response to the selection operation of the mode element corresponding to the second mode, the headphone body switches from the mode parameter corresponding to the first mode to the mode parameter corresponding to the second mode.
13. The method according to any one of claims 7-9, characterized in that, The sound effect parameters include audio parameters, sound effect parameters, equalizer parameters, and compression ratio parameters. The noise reduction parameters include noise reduction depth, noise reduction frequency band, and wind noise reduction parameters. The transparency parameters include ambient sound dynamic range parameters, sound change response speed, and human voice enhancement parameters.
14. A device control method, characterized in that, Applied to a terminal device, the method includes: Receive a mode identifier for a first mode sent by the earphone case in the wireless earphones, wherein the first mode is the operating mode of the wireless earphones selected by the user; Based on the mode identifier of the first mode, the mode parameters corresponding to the first mode are sent to the earphone body in the wireless earphone.
15. A device control method, characterized in that, A method for use in a wireless earphone case, the earphone case including a display screen, the method comprising: In response to a trigger operation on the display screen, a first interface is displayed; wherein the first interface includes: mode elements of multiple working modes in the wireless earphone, the multiple working modes including a first mode; In response to the selection operation of the mode element corresponding to the first mode, the mode identifier of the first mode is sent to the terminal device.
16. A device control method, characterized in that, The method is applied to a communication system, which includes a wireless headset and a terminal device. The wireless headset includes a case and a headset body, and the case includes a display screen. The earphone case responds to a trigger operation on the display screen and displays a first interface; wherein the first interface includes: mode elements of multiple working modes in the wireless earphone, the multiple working modes including a first mode; In response to the selection operation of the mode element corresponding to the first mode, the earphone box sends the mode identifier of the first mode to the terminal device; The terminal device receives the mode identifier of the first mode sent by the earphone box; The terminal device sends the mode parameters corresponding to the first mode to the earphone body according to the mode identifier of the first mode; The earphone body operates using the mode parameters corresponding to the first mode.
17. A communication system, characterized in that, The communication system includes a wireless headset and a terminal device. The wireless headset includes a headset case and a headset body. The headset case includes a display screen. The earphone case is configured to display a first interface in response to a trigger operation on the display screen; wherein the first interface includes mode elements of a plurality of working modes in the wireless earphone, the plurality of working modes including a first mode; The earphone case is configured to send a mode identifier of the first mode to the terminal device in response to a selection operation of the mode element corresponding to the first mode. The terminal device is configured to receive a mode identifier of a first mode sent by the earphone box; The terminal device is further configured to send mode parameters corresponding to the first mode to the earphone body according to the mode identifier of the first mode. The earphone body is configured to operate using the mode parameters corresponding to the first mode.
18. A terminal device, characterized in that, The terminal device includes a memory and one or more processors; the memory is coupled to the processors; wherein the memory stores computer program code, the computer program code including computer instructions, which, when executed by the processor, cause the terminal device to perform the device control method as described in claim 14.
19. A wireless earphone, characterized in that, The wireless headset includes a display screen, a memory, and one or more processors; the display screen, the memory, and the processors are coupled; wherein the memory stores computer program code, the computer program code including computer instructions, which, when executed by the processor, cause the wireless headset to perform the device control method as described in any one of claims 1-13.
20. An earphone case, characterized in that, The earphone case includes a display screen, a memory, and one or more processors; the display screen, the memory, and the processors are coupled; wherein the memory stores computer program code, the computer program code including computer instructions, which, when executed by the processor, cause the wireless earphones to perform the device control method as described in claim 15.
21. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores instructions that, when executed on a computer, enable the computer to perform the device control method as described in any one of claims 1-14.