Dial switching device and method, electronic equipment and computer readable storage medium

By using a low-power processor to collect physiological data in a smartwatch and combining it with a high-performance processor for analysis, low-power emotion category watch face switching was achieved, solving the problem of high power consumption in smartwatches and improving the device's energy efficiency and user experience.

CN120909423APending Publication Date: 2025-11-07GUANGDONG OPPO MOBILE TELECOMMUNICATIONS CORP LTD
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Patent Information

Application Number
CN202511005024.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2020-12-30
Publication Date
2025-11-07

AI Technical Summary

Technical Problem

Existing smartwatches consume excessive power during data detection and watch face switching, resulting in high device energy consumption.

Method used

Physiological data is collected using a low-power processor (first processor) and analyzed by a high-performance processor (second processor) to determine the emotion category and switch the watch face. The low-power processor is used to display or switch the watch face, and the switching is based on the correspondence between the emotion category and the watch face.

Benefits of technology

It reduces the overall power consumption of wearable devices, improves data processing efficiency, extends device usage time, and enhances the user experience by assisting users in regulating their emotions through emotion-category matching watch faces and operations.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention relates to a dial switching device and method, electronic equipment and a computer readable storage medium. The method is applied to the wearable device, the wearable device comprises a first processor and a second processor, the first processor is used for operating a first system, the second processor is used for operating a second system, the power consumption of the first processor is lower than that of the second processor, and the method comprises the steps that the first processor collects physiological data of a user; the second processor analyzes the physiological data to obtain the current emotion category of the user; determining a target dial plate corresponding to the current emotion category according to a corresponding relationship between the emotion category and the dial plate; and switching the current dial plate to the target dial plate. Since the power consumption of the first processor is lower than that of the second processor, the method can reduce the overall power consumption of the wearable device.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of wearable devices, and in particular to a watch face switching device and method, an electronic device, and a computer-readable storage medium. BACKGROUND

[0002] With the development of computer technology, users have more and more demands for terminal devices. In order to meet the demands of users, some smart watches with watch faces have appeared on the market. The smart watches can detect user data, and switch different watch faces according to the user data. However, the smart watches on the market currently have the problem of excessive power consumption when detecting data and switching watch faces. SUMMARY

[0003] The present application provides a watch face switching device, method, electronic device, and computer-readable storage medium, which can switch watch faces in a low-power consumption environment.

[0004] A first aspect of the present application provides a watch face switching device, which includes a collection module, an analysis module, a first determination module, and a switching module.

[0005] The collection module is configured to collect physiological data of a user.

[0006] The analysis module is configured to analyze the physiological data to obtain a current emotion category of the user.

[0007] The first determination module is configured to determine a target watch face corresponding to the current emotion category according to a corresponding relationship between emotion categories and watch faces.

[0008] The switching module is configured to switch a current watch face to the target watch face.

[0009] In one embodiment, the watch face switching device further includes a second determination module and an execution module. The second determination module is configured to determine a target operation corresponding to the current emotion category according to a corresponding relationship between emotion categories and operations, and the target operation is configured to assist the user in adjusting emotions. The execution module is configured to execute the target operation.

[0010] In one embodiment, the execution module is specifically configured to output health reminder information matched with the current emotion category, or send an interaction instruction to a voice device in communication connection with the wearable device, the interaction instruction being configured to instruct the voice device to perform voice interaction with the user, or perform semantic interaction with the user through an interaction device of the wearable device.

[0011] In one embodiment, the collection module is specifically configured to acquire at least two types of physiological data through at least two sensors.

[0012] In one of the embodiments, the switching module comprises: an acquisition unit, a first switching unit and a second switching unit; the acquisition unit is configured to acquire the current system mode; the first switching unit is configured to switch the current watch face to the target watch face when the current system mode is configured as the second system; and / or the second switching unit is configured to switch the current watch face to the target watch face when the current system mode is configured as the first system.

[0013] In one of the embodiments, the switching module comprises: a first switching unit, a detection output unit and a display unit; the first switching unit is configured to switch the current watch face to the target watch face; the detection output unit is configured to output a display instruction when it is detected that the current emotion category does not change within a preset time period; and the display unit is configured to display the target watch face according to the display instruction.

[0014] In one of the embodiments, the watch face switching device is applied to a wearable device, and the wearable device comprises a processor; the processor comprises a first processor and a second processor; the first processor is configured to run a first system, and the second processor is configured to run a second system.

[0015] In one of the embodiments, the power consumption of the first processor is lower than that of the second processor; the wearable device is a computer device; the modules of the watch face switching device are embedded in the processor in a hardware form or are independent of the processor; or are stored in a memory in the computer device in a software form to enable the processor to call and execute the operations corresponding to the modules of the watch face switching device.

[0016] In a second aspect, the application further provides a watch face switching method applied to a wearable device, comprising:

[0017] acquiring physiological data of a user, the physiological data being used to determine a current emotion category of the user;

[0018] determining a target watch face corresponding to the current emotion category according to a corresponding relationship between the emotion category and the watch face;

[0019] switching the current watch face to the target watch face.

[0020] In one of the embodiments, the wearable device comprises a first processor and a second processor, wherein the first processor is configured to run a first system, and the second processor is configured to run a second system; the first processor is configured to acquire physiological data; and the second processor is configured to determine a current emotion category of a user according to the physiological data.

[0021] In one of the embodiments, the power consumption of the first processor is lower than the power consumption of the second processor; and switching the current watch face to the target watch face comprises: obtaining a current system mode; if the current system mode is configured as a first system, the first processor switches the current watch face to the target watch face; and / or, if the current system mode is configured as a second system, the second processor switches the current watch face to the target watch face.

[0022] In a third aspect, the present application further provides an electronic device comprising a memory and a processor, the memory storing a computer program, and the computer program being executed by the processor to cause the processor to perform the steps of the watch face switching method according to any one of the embodiments of the second aspect.

[0023] In a fourth aspect, the present application further provides a computer readable storage medium, one or more non-volatile computer readable storage media containing computer executable instructions, which when executed by one or more processors, cause the processors to perform the steps of the watch face switching method according to any one of the embodiments of the second aspect.

[0024] The watch face switching device, method, electronic device and computer readable storage medium described above, the method is applied to a wearable device, the wearable device comprising a first processor and a second processor, the first processor being used to run a first system, the second processor running a second system, and the power consumption of the first processor being lower than the power consumption of the second processor. Due to the fact that the power consumption of the first processor is lower than the power consumption of the second processor, the operation of collecting physiological data of a user is performed by the first processor. At the same time, the second processor has a data analysis capability superior to the first processor, so the operation of analyzing the physiological data to obtain a current emotion category of the user and determining a target watch face corresponding to the current emotion category according to a corresponding relationship between the emotion category and the watch face is performed by the second processor. Finally, the current watch face can be switched to the target watch face by the first processor or the second processor. The method provided in the embodiments of the present application can reduce the overall power consumption of the wearable device, because the power consumption of the first processor is lower than the power consumption of the second processor, and the process of collecting physiological data of a user has a large power consumption. At the same time, the efficiency of data processing can be improved, and the time of data processing can be saved, because the first processor performs the operation related to data processing, and the second processor has a data analysis capability superior to the first processor. Thus, the overall power consumption of the wearable device is further reduced, and the experience of a user in using the smart wearable device is improved. BRIEF DESCRIPTION OF DRAWINGS

[0025] In order to more clearly illustrate the technical solutions of the embodiments of the present application or the prior art, the accompanying drawings needed to be used in the embodiments or prior art description will be briefly introduced as follows. Obviously, the accompanying drawings in the following description only represent some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained from these accompanying drawings without creative effort.

[0026] Figure 1 A structural block diagram of a dial switching device in one embodiment;

[0027] Figure 2 A structural block diagram of a dial switching device in another embodiment;

[0028] Figure 3 A structural block diagram of a dial switching device in another embodiment;

[0029] Figure 4 A structural block diagram of a dial switching device in another embodiment;

[0030] Figure 5 An application environment diagram of a dial switching method in one embodiment;

[0031] Figure 6 A flowchart of a dial switching method in one embodiment;

[0032] Figure 7 An interface or interface change diagram of a dial switching method in one embodiment;

[0033] Figure 8 A flowchart of a dial switching method in another embodiment;

[0034] Figure 9 An application scenario diagram of a dial switching method in one embodiment;

[0035] Figure 10 An application scenario diagram of a dial switching method in another embodiment;

[0036] Figure 11 An application scenario diagram of a dial switching method in another embodiment;

[0037] Figure 12 A structural diagram of an electronic device in one embodiment. DETAILED DESCRIPTION

[0038] In order to make the objects, technical solutions and advantages of the present application clearer, the present application will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and should not be used to limit the present application.

[0039] It can be understood that the terms "first", "second", etc. used in the present application can be used herein to describe various processors, but these processors are not limited by these terms. These terms are only used to distinguish the first processor from another processor. For example, without departing from the scope of the present application, the first client can be called the second client, and similarly, the second client can be called the first client. The first client and the second client are both clients, but they are not the same client.

[0040] Figure 1 A structural block diagram of a watch face switching device of one embodiment. As Figure 1 shown, the present embodiment provides a watch face switching device 10, comprising: an acquisition module 11, an analysis module 12, a first determination module 13 and a switching module 14.

[0041] The acquisition module 11 is configured to acquire physiological data of a user.

[0042] The analysis module 12 is configured to analyze the physiological data to obtain a current emotion category of the user.

[0043] The first determination module 13 is configured to determine a target watch face corresponding to the current emotion category according to a corresponding relationship between emotion categories and watch faces.

[0044] The switching module 14 is configured to switch a current watch face to the target watch face.

[0045] In one embodiment, as Figure 2 shown, the watch face switching device 10 further comprises a second determination module 15 and an execution module 16.

[0046] The second determination module 15 is configured to determine a target operation corresponding to the current emotion category according to a corresponding relationship between emotion categories and operations, the target operation being configured to assist the user in adjusting the emotion;

[0047] The execution module 16 is configured to execute the target operation.

[0048] In one embodiment, the execution module 16 is specifically configured to output health reminder information matched with the current emotion category.

[0049] In one embodiment, the execution module 16 is specifically configured to send an interaction instruction to a voice device in communication connection with the wearable device; the interaction instruction being configured to instruct the voice device to perform voice interaction with the user.

[0050] In one embodiment, the execution module 16 is specifically configured to perform semantic interaction with the user through an interaction device of the wearable device.

[0051] In one of the embodiments, the collection module 16 is specifically configured to acquire at least two types of physiological data through at least two sensors.

[0052] In one of the embodiments, as shown in Figure 3 The switching module 14 includes an acquisition unit 141, a first switching unit 142, and a second switching unit 143.

[0053] The acquisition unit 141 is configured to acquire a current system mode.

[0054] The first switching unit 142 is configured to switch a current watch face to a target watch face in a case where the current system mode is configured as the second system; and / or,

[0055] The second switching unit 143 is configured to switch the current watch face to the target watch face in a case where the current system mode is configured as the first system.

[0056] In one of the embodiments, as shown in Figure 4 The switching module 14 includes a first switching unit 142, a detection output unit 144, and a display unit 145.

[0057] The first switching unit 142 is configured to switch a current watch face to a target watch face.

[0058] The detection output unit 144 is configured to output a display instruction in a case where it is detected that the current emotion category does not change within a preset time period.

[0059] The display unit 145 is configured to display the target watch face according to the display instruction.

[0060] The division of the modules in the watch face switching apparatus is only for example, and in other embodiments, the watch face switching apparatus can be divided into different modules as needed to complete all or part of the functions of the watch face switching apparatus.

[0061] In one of the embodiments, the watch face switching apparatus is applied to a wearable device, and the wearable device includes a processor; the processor includes a first processor and a second processor, the first processor is configured to run a first system, and the second processor is configured to run a second system.

[0062] In one of the embodiments, the power consumption of the first processor is lower than that of the second processor; the wearable device is a computer device, and the modules of the watch face switching apparatus can be embedded in the processor in a hardware form or independent of the processor; or stored in a memory in the computer device in a software form to enable the processor to call and execute the operations corresponding to the modules of the watch face switching apparatus.

[0063] For specific limitations regarding the dial switching device, please refer to the limitations on the dial switching method below, which will not be repeated here.

[0064] Figure 5 This is a schematic diagram illustrating the application environment of the dial switching method in one embodiment. For example... Figure 5 As shown, the application environment includes wearable devices and users. The wearable devices can be smart bracelets, smart glasses, smartwatches, smart necklaces, etc. Optionally, this scenario may also include other devices, which can be servers. Servers can be implemented through independent servers or server clusters composed of multiple servers; optionally, the server can also be a cloud server. Other devices can also be, but are not limited to, various personal computers, laptops, smartphones, tablets, smart robots, learning machines, early education machines, and smart speakers. The wearable device can interact with the user and other devices. In this embodiment, the wearable device is used to acquire the user's physiological data and analyze and process the physiological data to switch the wearable device's watch face based on the processing results. The wearable device can also communicate with other devices through a network, which can be a wireless network, a local area network, or a wide area network.

[0065] With the development of computer technology, users have increasingly higher demands for terminal devices. To meet these demands, smartwatches with watch faces have emerged on the market. These smartwatches can detect user data and switch between different watch faces accordingly. However, currently, smartwatches on the market implement data detection and watch face switching within a single system, resulting in excessive power consumption. Therefore, a new method for switching watch faces on terminal devices has emerged.

[0066] Figure 6 This is a flowchart illustrating a dial switching method in one embodiment. The dial switching method in this embodiment operates on... Figure 5 The following description uses a wearable device as an example. This wearable device includes a first processor and a second processor, wherein the first processor runs a first system, and the second processor runs a second system. The power consumption of the first processor is lower than that of the second processor, such as... Figure 6 As shown, the dial switching method includes steps S202 to S206.

[0067] Step S202: The first processor collects the user's physiological data.

[0068] Specifically, the first processor is a processor distinguished from the second processor, and the first processor has a smaller number of cores than the second processor, so the first processor has characteristics of small frequency, small cache, small power consumption, etc., and because it carries fewer programs, it can meet general applications, so it presents a low-power state to the outside. For example, the first processor can be a small-core low-power processor such as a fourth-generation i7, Kirin 980, Snapdragon 820, Celeron series, Atom series, Intel n3150, etc. The first processor is used to run the first system, and the first system can also be an RTOS system, which also has the characteristics of low power consumption. The physiological data is used to determine the current emotion category of the user, and the physiological data can be the heart rate, blood oxygen saturation, skin surface conductivity data, skin temperature, etc. of the user. The first processor can collect physiological data of the user by setting sensors on the wearable device. Alternatively, the first processor acquires at least two types of physiological data through at least two sensors, that is, a variety of sensors can be provided in the first system, such as collecting the current user's heart rate and blood oxygen saturation through the heart rate and blood oxygen sensors on the wearable device; collecting the current user's skin surface conductivity through the skin electricity reflection sensor on the wearable device; collecting the current user's skin surface temperature through the temperature sensor on the wearable device, etc. The sensors and physiological data measured by the sensors can also have other types, which are not limited by the embodiments of the present application. It should be noted that the first processor can collect physiological data of the user in real time, or collect physiological data of the user according to a preset time within a preset time period or periodically.

[0069] Among them, different types of physiological data can be collected through different sensors provided on the wearable device, and multiple types of physiological data can be used to judge the current emotion category of the user from different angles, providing a basis for judgment, making the judgment result more accurate, and thus obtaining an emotion category that is more matched with the current user's emotion, improving the accuracy of the user's emotion.

[0070] Step S204, the second processor analyzes the physiological data to obtain the current emotion category of the user; and determines the target watch face corresponding to the current emotion category according to the corresponding relationship between the emotion category and the watch face.

[0071] In the embodiment, after collecting the physiological data of the user, the first processor transmits the physiological data to the second processor for processing. The core number of the second processor is higher than that of the first processor. The higher the core number is, the higher the frequency is, which means that the performance of the processor is better, that is, the response speed of the processor is faster and the operation capacity of the processor is stronger. However, compared with the first processor, the power consumption of the second processor is relatively high. The second processor can analyze the physiological data collected by the first processor in a short time, and can obtain the current emotion category of the user according to the analysis result of the physiological data. Optionally, the second processor can be a large core processor such as a Mediatek X20, a Pentium series, an Intel Core series, etc. The second processor is used to run a second system. The second system can also be an Android system. The Android system can carry many programs, and has strong operation processing capacity.

[0072] The second processor can analyze the physiological data based on physiological data collected by one sensor or based on multiple physiological data collected by multiple sensors. Alternatively, the second processor can analyze the physiological data based on physiological data collected by one sensor in a preset time period or based on multiple physiological data collected by multiple sensors in a preset time period. For example, in a normal case, the blood oxygen saturation of a person is 97-100%, and the normal heart rate is 60-100 times per minute. If the heart rate sensor and the blood oxygen sensor collect the heart rate of the current user, which is more than 100 times per minute, and the blood oxygen saturation is more than 100%, the second processor can determine that the user is in an angry state based on the physiological data, because the heart rate and the blood oxygen saturation of a person in an angry state are beyond the normal range. Alternatively, if the heart rate sensor and the blood oxygen sensor collect the heart rate of the current user, which is more than 100 times per minute, and the blood oxygen saturation is more than 100%, and the skin conductance sensor collects the conductive performance of the skin surface of the current user, which is relatively strong, the second processor can determine that the user is in an angry state based on the physiological data, because the heart rate and the blood oxygen saturation of a person in an angry state are beyond the normal range, and the skin conductive performance is relatively strong when the user is excited. In another embodiment, the second processor can analyze multiple sets of data collected by the heart rate sensor and the blood oxygen sensor in a time period, wherein the multiple sets of data include at least three sets of data. If the heart rate and the blood oxygen saturation are normal twice, and the heart rate and the blood oxygen saturation are both low once, the second processor can determine that the user is in a depressed state based on the data. Alternatively, the second processor can analyze multiple sets of data collected by the heart rate sensor and the blood oxygen sensor in a time period and multiple sets of data collected by the skin conductance sensor, wherein the multiple sets of data include at least three sets of data. If the heart rate and the blood oxygen saturation are normal twice, and the heart rate and the blood oxygen saturation are both low once, and the conductive performance is weak three times, the second processor can determine that the user is in a depressed state based on the data. The embodiments of the present application are not limited to this.

[0073] The above emotion category is used to represent the current emotion of the user, for example, the emotion category can be anger, sadness, boredom, happiness, joy, terror, fear, etc. After determining the current emotion category of the user, the second processor selects a target watch face corresponding to the emotion category according to the pre-stored correspondence between the emotion category and the watch face in the memory. The content of the target watch face switching can be any one of an image, a text, a video, an audio, or a combination of multiple modes, which is used to express the current emotion category. For example, when the second processor analyzes the physiological data transmitted by the first processor and obtains that the current emotion category of the user is happiness, the content of the target watch face switching can be a smiling face, a beautiful image, the word “happiness”, a happy music, a video expressing happiness, or the color of the watch face is switched to red.

[0074] In step S206, the current watch face is switched to the target watch face.

[0075] In the embodiment, after the second processor determines the target watch face corresponding to the current emotion, that is, determines what picture, text, music, etc. the watch face will show to the user next, for example, when the emotion of the user at this time is happiness, the watch face can be switched to a smiling face displayed on the screen, and if the user is also looking at the watch face at this time, the user will see a smiling face. Alternatively, the watch face can play a happy music for the user. The content of the watch face switching can also be all displayed to the user, so that the user can randomly select to display text, change the color of the watch face, play music or play video according to his own preference; if the user does not select the content switching, the watch face can also switch the content according to the pre-set default mode, for example, the default mode can be to show the corresponding pattern to the user.

[0076] The second processor can directly switch the current watch face to the target watch face after analyzing the current emotion category and determining the target watch face, or the second processor can instruct the first processor to switch the current watch face to the target watch face, or the second processor can display the target watch face for a period of time and then the first processor displays the target watch face, which is not limited in the embodiment.

[0077] The watch face switching method provided in the embodiments of the present application is applied to a wearable device, the wearable device comprising a first processor and a second processor, the first processor being configured to run a first system, the second processor being configured to run a second system, and the power consumption of the first processor being lower than that of the second processor. Because the power consumption of the first processor is lower than that of the second processor, the first processor is configured to perform the operation of collecting physiological data of a user. Meanwhile, the second processor has a data analysis capability superior to that of the first processor, so the second processor is configured to perform the operation of analyzing the physiological data to obtain a current emotion category of the user, and determining a target watch face corresponding to the current emotion category according to a corresponding relationship between the emotion category and the watch face. Finally, the first processor or the second processor can switch the current watch face to the target watch face. The method provided in the embodiments of the present application can reduce the overall power consumption of the wearable device, because the first processor is configured to perform the operation of collecting physiological data of a user, which is usually real-time, and requires the corresponding processor to be in a working state all the time. Meanwhile, the second processor has a data analysis capability superior to that of the first processor, so the first processor is configured to perform the operation related to data processing, which can improve the efficiency of data processing and save the time of data processing, thereby further reducing the overall power consumption of the wearable device.

[0078] In the above Figure 6 In the embodiments shown in the above

[0079] In one embodiment, switching the current watch face to the target watch face comprises: the second processor switching the current watch face to the target watch face, and detecting that the current emotion category has not changed in a preset time period, and then outputting a display instruction to the first processor; and the first processor displaying the target watch face in response to the display instruction.

[0080] In the present embodiment, after the second processor determines the target watch face corresponding to the current emotion, the wearable device can be configured to perform the action of switching the current watch face to the target watch face by default, for example, Figure 7As shown, for example, the second processor can control the watch face to display blue, display the two words "sad", display a crying face, or output a sad music, etc. The second processor monitors the physiological data input by the first processor in real time while the second processor switches to the target watch face. If the user's emotion category does not change for a period of time, that is, the user is in a sad emotion for a period of time, the second processor can output a display instruction to the first processor to control the watch face to continue to display the target watch face, such as displaying blue, displaying the two words "sad", displaying a crying face, or outputting a sad music, etc. However, the content displayed by the target watch face for the user does not change for a period of time. Only when the second processor monitors that the user's emotion category changes at a certain moment, the current watch face is switched to new content immediately, and the above steps are repeated.

[0081] The watch face switching method provided in the embodiments of the present application takes over the task of displaying the target watch face from the first processor when the second processor monitors that the user's emotion category does not change for a period of time. Although the second processor has superior processing performance, it brings about a significant increase in heat generation and power consumption of the wearable device. Therefore, the second processor has high power consumption and is not suitable for long-time work. Since the first processor has lower power consumption than the second processor, the task of displaying the target watch face for a long time is performed by the first processor, which can reduce the overall power consumption of the wearable device and prolong the use time of the wearable device.

[0082] In another embodiment, switching the current watch face to the target watch face includes:

[0083] obtaining a current system mode; if the current system mode is configured as a first system, the first processor switches the current watch face to the target watch face; if the current system mode is configured as a second system, the second processor switches the current watch face to the target watch face.

[0084] Specifically, based on the above, after the second processor determines the target watch face corresponding to the current emotion, the wearable device can also determine, according to the user's selection, whether the first processor or the second processor switches the current watch face to the target watch face. When the user selects the wearable device to run the first system, the first processor performs the action of switching the current watch face to the target watch face. Similarly, when the user selects the wearable device to run the second system, the second processor performs the action of switching the current watch face to the target watch face.

[0085] The watch face switching method provided in the embodiments of the present application can select the switching subject according to the user's setting, thereby increasing the interaction between the user and the wearable device and making the setting of the wearable device more humanized.

[0086] Figure 8 A flowchart of a dial switching method according to another embodiment of the present application is provided. The embodiment relates to an optional process of how the second processor determines a target operation corresponding to the mood category to assist the user in adjusting the mood. On the basis of the above embodiment, after step S206, the following steps can be further included:

[0087] In step S302, a target operation corresponding to the current mood category is determined according to the correspondence between the mood category and the operation, and the target operation is used to assist the user in adjusting the mood.

[0088] In the embodiment, after the second processor switches the target dial, in order to enhance the user experience and improve the service effect of the wearable device, an additional target operation can be performed according to the mood category, and the target operation is used to assist the user in adjusting the mood. For example, if the mood category of the user is anger, a corresponding target operation of pacifying the user to pacify the bad mood of the user can be performed; if the mood category of the user is sadness, a corresponding target operation of encouragement to comfort the user and mobilize the positive mood of the user can be performed; if the mood category of the user is happy, a corresponding target operation of strengthening the active atmosphere to make the user more happy can be performed.

[0089] In step S304, the target operation is performed.

[0090] In the embodiment, after the second processor determines the corresponding target operation, the second processor can perform the target operation, or the second processor can send an instruction to the first processor to instruct the first processor to perform the target operation. Optionally, the execution subject of the target operation can be pre-set by the wearable device, or can be selected by the user.

[0091] In an embodiment, the wearable device can output some reminder information to assist the user in adjusting the mood and performing the target operation, including: outputting health reminder information matched with the current mood category.

[0092] In the embodiment, after the second processor determines the corresponding target operation, the target operation can specifically be that, while the mood category is shown to the user, further health reminder information matched with the mood category is provided to the user to provide some good opinions or suggestions to the user to relieve and pacify the mood of the user. The reminder information can be in the form of text, audio or video, etc. For example, if the mood category of the user is anger, the wearable device can output some health reminder information matched with the mood category, such as "It is normal to be angry, but it is not good to be angry for a long time. You can try to do some sports to relieve your anger." Figure 9As shown, if the current user's emotion category is anger, when displaying the target dial representing anger, an audio message can be played that warns the user of the harmful effects of anger. The message might include phrases like, "Head to the sky, feet to the ground, life is all about one breath; remember three things about anger: sulking, being stubborn, and throwing tantrums; banging on tables and chairs in anger, turning a reasonable argument into an unreasonable one; life is not easy, it's a pity to ruin yourself; being angry for one minute, you lose sixty seconds of good fortune; being angry for one hour, you act foolishly for sixty minutes; being angry for a week, you damage your liver and spleen." Simultaneously, images of spleen- and liver-protecting foods can be displayed along with cooking videos to divert the user's attention and soothe their emotions.

[0093] The dial switching method provided in this application embodiment executes the target operation of outputting health reminder information that matches the current mood category through a first processor or a second processor. It can automatically provide users with more considerate reminder services, divert users' attention through reminder services, and achieve the purpose of alleviating users' bad moods. At the same time, users can also learn more about health and cooking based on the health reminder information, enriching their knowledge.

[0094] In another embodiment, the wearable device can also wake up some voice devices, enabling the voice devices to interact with the user to assist the user in regulating their emotions. Performing the target operation includes: sending an interaction command to a voice device communicatively connected to the wearable device; the interaction command instructs the voice device to perform voice interaction with the user.

[0095] In this embodiment, based on the above-described determination of the target operation according to emotion type, the target operation can be an interaction instruction sent by the first processor or the second processor to a voice device communicatively connected to the wearable device. This voice device can be, for example, various personal computers, laptops, smartphones, tablets, smart robots, learning machines, early education machines, and smart speakers with dialogue capabilities. The interaction instruction is used to instruct any of the aforementioned voice devices to perform voice interaction with the user. For example, such as... Figure 10 As shown, when the second processor determines that the user's emotional category is boredom, the first or second processor of the wearable device sends an interaction command to a smartphone. The smartphone can play a word chain game with the user or tell the user jokes to get the user engaged and alleviate the user's boredom.

[0096] The dial switching method provided in this application embodiment executes an interactive instruction sent to a voice device that is communicatively connected to the wearable device through a first processor or a second processor to instruct the voice device to perform a target operation of voice interaction with the user. This increases the interaction between the wearable device, the user, and other devices, making the functions of the wearable device more diversified to meet the needs of different users.

[0097] In yet another embodiment, the wearable device can also interact with the user through some interaction functions of itself to assist the user in adjusting the mood, performing the target operation, including: interacting with the user semantically through the interaction device of the wearable device.

[0098] In the embodiment, based on the target operation determined according to the mood type, the target operation can be sending an interaction instruction by the first processor or the second processor to the interaction device of the wearable device to make the wearable device interact with the user semantically. For example, as shown in the figure, if at this time, the mood category of the user is lost, the interaction device of the wearable device starts the chat function and completes the following conversation with the user, where the conversation can be implemented in the form of language, and can also be implemented in the form of voice: Figure 11

[0099] Wearable device: "Little love, hello, let's play a game!"

[0100] User: "OK, what game."

[0101] Wearable device: "Let's play a brain teaser game!"

[0102] User: "OK."

[0103] Wearable device: "Then I will start, please ask: Xiaogang asks Xiaoliang: "I use lipstick to hit your head, you use eyebrow pencil to hit my head, younger brother uses a powder box to hit the head of the sister, and the sister uses skin cream to hit the head of the brother. Who has the most painful head?"

[0104] User: "Sister, because the powder box sounds bigger, it will be more painful."

[0105] Wearable device: "Wrong, it is the mother."

[0106] ...

[0107] After the mood of the user is aroused, the user can choose to terminate the interaction with the wearable device, or can choose to let the wearable device provide other services, so that the wearable device is more humanized and the recognition of the wearable device by the user is improved.

[0108] The dial switching method provided by the embodiment of the application makes the wearable device more humanized and improves the human interaction performance of the wearable device by the first processor or the second processor performing the target operation of interacting with the user semantically through the interaction device of the wearable device.

[0109] ​In summary, the watch face switching method in this embodiment determines the target operation corresponding to the current emotion category based on the correspondence between emotion categories and operations. This target operation can be outputting health reminder information matching the current emotion category or sending an interaction command to a voice device connected to the wearable device. The interaction command instructs the voice device to interact with the user via voice or semantic interaction through the wearable device's interaction mechanism. This watch face switching method automatically provides users with target watch faces with different elements. The rich watch face content helps users regulate their emotions and also offers a variety of thoughtful additional services. The diverse functions provided by the wearable device not only meet different user needs but also make the wearable device more user-friendly and increase user acceptance.

[0110] It should be understood that although the steps in the flowchart above are shown sequentially as indicated by the arrows, these steps are not necessarily executed in the order indicated by the arrows. Unless otherwise explicitly stated herein, there is no strict order restriction on the execution of these steps, and they can be executed in other orders. Moreover, at least some steps in the flowchart above may include multiple sub-steps or multiple stages. These sub-steps or stages are not necessarily completed at the same time, but can be executed at different times. The execution order of these sub-steps or stages is not necessarily sequential, but can be performed alternately or in turn with other steps or at least some of the sub-steps or stages of other steps.

[0111] Figure 12 This is a schematic diagram of the internal structure of an electronic device in one embodiment. For example... Figure 12 As shown, the electronic device includes a processor and a memory connected via a system bus. The processor provides computing and control capabilities to support the operation of the entire electronic device. The memory may include non-volatile storage media and internal memory. The non-volatile storage media stores an operating system and computer programs. The computer programs can be executed by the processor to implement a dial switching method provided in the following embodiments. The internal memory provides a cached runtime environment for the operating system computer programs in the non-volatile storage media. The electronic device can be any terminal device such as a smart bracelet, smart glasses, smartwatch, or smart necklace.

[0112] The various modules in the dial switching device provided in this application embodiment can be implemented in the form of a computer program. This computer program can run on a terminal. The program modules constituted by this computer program can be stored in the memory of an electronic device. When the computer program is executed by a processor, it implements the steps of the method described in this application embodiment.

[0113] The embodiment of the present application further provides a computer readable storage medium. One or more nonvolatile computer readable storage media containing computer executable instructions, when the computer executable instructions are executed by one or more processors, cause the processor to execute the following steps of the watch face switching method:

[0114] Collecting physiological data of a user;

[0115] Analyzing the physiological data to obtain a current emotion category of the user; and determining a target watch face corresponding to the current emotion category according to a corresponding relationship between emotion categories and watch faces;

[0116] Switching the current watch face to the target watch face.

[0117] In one embodiment, the computer program, when executed by the processor, further implements the following steps: determining a target operation corresponding to the current emotion category according to a corresponding relationship between emotion categories and operations, the target operation being used to assist the user in adjusting the emotion;

[0118] Performing the target operation.

[0119] In one embodiment, the computer program, when executed by the processor, further implements the following steps: outputting health reminder information matched with the current emotion category.

[0120] In one embodiment, the computer program, when executed by the processor, further implements the following steps: sending an interaction instruction to a voice device in communication connection with the wearable device; the interaction instruction being used to instruct the voice device to perform voice interaction with the user.

[0121] In one embodiment, the computer program, when executed by the processor, further implements the following steps: performing semantic interaction with the user through an interaction device of the wearable device.

[0122] In one embodiment, the computer program, when executed by the processor, further implements the following steps: acquiring at least two types of physiological data through at least two sensors.

[0123] In one embodiment, the computer program, when executed by the processor, further implements the following steps: switching the current watch face to the target watch face, and detecting that the current emotion category does not change within a preset time period, and then outputting a display instruction;

[0124] In response to the display instruction, the target watch face is displayed.

[0125] In one embodiment, the computer program, when executed by the processor, further implements the following steps: in a case where the current system mode is configured as a first system, switching the current watch face to the target watch face;

[0126] In a case where the current system mode is configured as a second system, switching the current watch face to the target watch face.

[0127] A computer program product comprising instructions which, when executed on a computer, cause the computer to carry out a watch face switching method.

[0128] As used herein, any reference to storage, memory, database or other medium can include non-volatile and / or volatile storage. Non-volatile storage can include read only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable programmable ROM (EEPROM), or flash memory. Volatile storage can include random access memory (RAM), which acts as external cache. By way of illustration and not limitation, RAM is available in many forms such as static RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), double data rate SDRAM (DDR SDRAM), enhanced SDRAM (ESDRAM), Synchlink DRAM (SLDRAM), Rambus DRAM (RDRAM), direct Rambus dynamic RAM (DRDRAM), and Rambus dynamic RAM (RDRAM).

[0129] The above embodiments only express several implementation manners of the present application, and the description is relatively specific and detailed, but it should not be understood as a limitation on the patent scope of the present application. It should be noted that for those skilled in the art, several modifications and improvements can be made without departing from the concept of the present application, and these all belong to the protection scope of the present application. Therefore, the protection scope of the patent of the present application should be subject to the appended claims.

Claims

1. A watch dial switching device characterized by comprising: The watch face switching device comprises a collection module, an analysis module, a first determination module and a switching module. The collection module is configured to collect physiological data of a user. The analysis module is configured to analyze the physiological data to obtain a current emotional category of the user. The first determination module is configured to determine a target watch face corresponding to the current emotional category according to a corresponding relationship between emotional categories and watch faces. The switching module is configured to switch a current watch face to the target watch face.

2. The apparatus of claim 1, wherein, The watch face switching device further comprises a second determination module and an execution module. The second determination module is configured to determine a target operation corresponding to the current emotional category according to a corresponding relationship between emotional categories and operations, the target operation being configured to assist the user in adjusting emotions. The execution module is configured to execute the target operation.

3. The apparatus of claim 2, wherein, The execution module is specifically configured to output health reminder information matched with the current emotional category, or send an interaction instruction to a voice device communicatively connected to the wearable device, the interaction instruction being configured to instruct the voice device to perform voice interaction with the user, or perform semantic interaction with the user through an interaction device of the wearable device.

4. The apparatus of claim 1, wherein, The collection module is specifically configured to acquire at least two types of physiological data through at least two sensors.

5. The apparatus of claim 1, wherein, The switching module comprises an acquisition unit, a first switching unit and a second switching unit. The acquisition unit is configured to acquire a current system mode. The first switching unit is configured to switch the current watch face to the target watch face when the current system mode is configured as a second system, and / or The second switching unit is configured to switch the current watch face to the target watch face when the current system mode is configured as a first system.

6. The apparatus of claim 1, wherein, The switching module comprises a first switching unit, a detection output unit and a display unit. The first switching unit is configured to switch the current watch face to the target watch face. The detection output unit is configured to detect that the current emotional category does not change within a preset time period, and output a display instruction. The display unit is configured to display the target watch face according to the display instruction.

7. The device of any one of claims 1 to 6, wherein, The watch face switching device is applied to a wearable device, and the wearable device comprises a processor.

8. The apparatus of claim 7, wherein, The first processor has a lower power consumption than the second processor.

9. A watch dial switching method characterized by, The wearable device is a computer device. The modules of the watch face switching device are embedded in the processor in a hardware form or independent of the processor, or are stored in a memory in the computer device in a software form to enable the processor to call and execute operations corresponding to the modules of the watch face switching device. The method is applied to a wearable device, and the method comprises: collecting physiological data of a user, the physiological data being used to determine a current emotional category of the user; determining a target watch face corresponding to the current emotional category according to a corresponding relationship between emotional categories and watch faces; switching a current watch face to the target watch face.

10. The method of claim 9, wherein, The wearable device comprises a first processor and a second processor, wherein the first processor is configured to run a first system, and the second processor is configured to run a second system; the first processor is configured to collect the physiological data; and the second processor is configured to determine a current emotion category of the user according to the physiological data.

11. The method of claim 10, wherein, The power consumption of the first processor is lower than that of the second processor; and the switching of the current watch face to the target watch face comprises: acquiring a current system mode; if the current system mode is configured as the first system, the first processor switches the current watch face to the target watch face; and / or if the current system mode is configured as the second system, the second processor switches the current watch face to the target watch face.

12. An electronic device, comprising: The computer program is stored in the memory and executed by the processor, so as to make the processor execute the steps of the watch face switching method according to any one of claims 9 to 11.

13. A computer-readable storage medium, characterized in that, One or more non-volatile computer-readable storage media comprising computer executable instructions, wherein a computer program is stored in the non-volatile computer-readable storage media, and the computer program is executed by a processor to implement the following steps: collecting physiological data of a user; analyzing the physiological data to obtain a current emotion category of the user; determining a target watch face corresponding to the current emotion category according to a corresponding relationship between emotion categories and watch faces; switching a current watch face to the target watch face.

14. The readable storage medium of claim 13, wherein, The computer program is executed by the processor to further implement the following steps: if the current system mode is configured as the first system, switching the current watch face to the target watch face; and / or if the current system mode is configured as the second system, switching the current watch face to the target watch face.

15. The readable storage medium of claim 13, wherein, The computer program is executed by the processor to further implement one or more of the following steps: determining a target operation corresponding to the current emotion category according to a corresponding relationship between emotion categories and operations, the target operation being configured to assist the user in adjusting the emotion; executing the target operation; outputting health reminder information matching the current emotion category; sending an interaction instruction to a voice device communicatively connected to the wearable device, the interaction instruction being configured to instruct the voice device to perform voice interaction with the user; performing semantic interaction with the user through an interaction device of the wearable device; acquiring at least two types of physiological data through at least two sensors; switching the current watch face to the target watch face, and detecting that the current emotion category does not change within a preset time period, and then outputting a display instruction; displaying the target watch face in response to the display instruction.

Citation Information

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