Display method, wearable device and storage medium

By displaying the icon of the function item on the display screen of the wearable device and displaying the name after continuous operation, the difficulty in finding caused by the small screen is solved, and efficient and accurate function item selection is achieved.

CN120447806APending Publication Date: 2025-08-08HONOR DEVICE CO LTD
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Patent Information

Application Number
CN202410144865.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-02-01
Publication Date
2025-08-08

AI Technical Summary

Technical Problem

The wearable device has a smaller screen, which makes it difficult and inefficient for users to find multiple feature items, especially for users who are not familiar with icons.

Method used

On the display screen of the wearable device, by displaying the icon of the function item in the first interface and displaying the name of the function item after continuous operation, combining the dynamic movement of the interface and prompt information, the user search efficiency is improved.

Benefits of technology

By providing more reference information and concise interaction, users can quickly and accurately find the required function items, improving user experience and search efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention provides a display method, wearable equipment and a storage medium, and relates to the technical field of terminals, the display method is applied to the wearable equipment, the wearable equipment is provided with a display screen capable of being operated in a touch mode, the method comprises the steps that a first interface is displayed, and the first interface comprises icons of function items in the wearable equipment; under the condition that an icon located at the edge of the icon interface is displayed in the first interface, receiving a first operation acting on the first interface; in response to the fact that the duration of the first operation reaches the first duration, a second interface is displayed, and the second interface comprises icons of function items in the first interface and names of the function items. In the scheme provided by the embodiment of the invention, after the icon located at the edge of the icon interface is displayed in the first interface, not only is the icon of the function item displayed for the user, but also the name of the function item is displayed for the user, so that more basis information is provided for the user to select the function item, and the efficiency of selecting the required function item by the user is improved.
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Description

Technical Field

[0001] The present application relates to the field of terminal technology, and in particular to a display method, a wearable device, and a storage medium. Background Art

[0002] Various wearable devices such as smart watches and bracelets are becoming more and more common. Wearable devices can provide users with various functional items. Wearable devices display icons of various functional items on the screen, so that users can select the functional items they need by viewing the icons.

[0003] However, the screens of wearable devices are generally small. When the wearable devices provide many functions, it is difficult and inefficient for users to select the functions they need. Summary of the Invention

[0004] In view of this, the present application provides a display method, a wearable device, and a storage medium to improve the efficiency of users selecting the function items they need. The specific technical solution is as follows:

[0005] In a first aspect, the present application provides a display method, which is applied to a wearable device having a touch-operable display screen, the method comprising:

[0006] Displaying a first interface, wherein the first interface includes: icons of function items in the wearable device;

[0007] When an icon located at an edge of the icon interface is displayed in the first interface, receiving a first operation acting on the first interface;

[0008] In response to the duration of the first operation reaching a first duration, a second interface is displayed, wherein the second interface includes: an icon of the function item in the first interface and the name of the function item.

[0009] When an icon located at the edge of the icon interface is displayed in the first interface, it means that the user has not found the function item he needs. It also shows from a certain perspective that the user has encountered difficulties in finding the function item he needs. This is the reason why the user keeps operating on the screen of the wearable device. In the solution provided by this embodiment, when it is found that the user has difficulty finding the function item he needs, not only the icon of the function item is displayed to the user, but also the name of the function item is displayed to the user. This provides more reference information for the user to find the function item, thereby facilitating the user to find the function item he needs, improving search efficiency, and quickly finding the required function item, thereby helping the user to achieve efficient and accurate access.

[0010] In addition, by performing the first operation for a certain period of time on the first interface to trigger the display of the function item name, the interaction is simple, and thus the user's desire to view the function item name can be satisfied through a simple interactive operation.

[0011] Furthermore, for the function item list and control center of the wearable device, even if the screen of the wearable device is small, the efficiency of the user finding the function items he needs and the readability of the function item information can be taken into account.

[0012] As an embodiment of the first aspect of the present application, the method further includes:

[0013] In response to receiving the first operation, the first interface moves along a moving direction indicated by the first operation, and an area of the display screen other than the first interface forms an exit area; and

[0014] After the first operation is completed, the first interface moves in a direction opposite to the moving direction indicated by the first operation, and the first interface covers the moved-out area.

[0015] In the solution provided by this embodiment, during the user operation process, the first interface moves along with the user's first operation, allowing the user to feel the response of the wearable device to the first operation, thereby improving the interactivity between the user and the wearable device and greatly enhancing the user experience.

[0016] As an embodiment of the first aspect of the present application, before displaying the second interface, the method further includes:

[0017] In response to the duration reaching a first duration, prompt information is displayed in the removal area.

[0018] In the solution provided by this embodiment, prompt information is displayed to the user before the mode switching occurs, which enables the user to intuitively and clearly know the changes that will occur to the interface, thereby enhancing the user experience.

[0019] As an embodiment of the first aspect of the present application, displaying prompt information in the removal area includes:

[0020] The prompt information is gradually displayed in the moving-out area along the moving direction of the first operation instruction and with a first preset step length.

[0021] In the solution provided by this embodiment, when displaying prompt information, the prompt information is displayed in a dynamic form, so that the interface changes dynamically, which can bring a better experience to the user.

[0022] As an embodiment of the first aspect of the present application, the method further includes:

[0023] After the first operation is completed or the prompt information is displayed for a second time period, the prompt information is hidden.

[0024] After the first operation is completed or the prompt information is displayed for a certain period of time, hiding the prompt information can make the interface more concise and clear.

[0025] As an embodiment of the first aspect of the present application, hiding the prompt information includes:

[0026] The prompt information is gradually hidden along a direction opposite to the moving direction of the first operation instruction at a second preset step length.

[0027] In the solution provided by this embodiment, when hiding the prompt information, the prompt information is hidden in a dynamic form, so that the interface changes dynamically, which can bring a better experience to the user.

[0028] As an embodiment of the first aspect of the present application, the second interface includes all or part of the icons included in the first interface, so that the second interface displays icons in a variety of forms.

[0029] As an embodiment of the first aspect of the present application, the icons included in the second interface are determined according to the following method:

[0030] Determining a first number of icon units displayed on the second interface according to a size of the display screen;

[0031] Along the moving direction of the first operation instruction, icons included in a first number of icon units are determined from the icons included in the first interface as icons included in the second interface.

[0032] In this way, after adding the names of the function items in the second interface, they can not only correspond to the first interface, but also take into account the size of the display screen, so that the icons and names seen by the user will not jump, and the visual experience is better.

[0033] As an embodiment of the first aspect of the present application, in the second interface, the name of the function item is located below the icon of the function item. This corresponds to the visual habits of most users, allowing users to quickly understand the icon and name of the function item, thereby improving the efficiency of users in finding the required function item.

[0034] As an embodiment of the first aspect of the present application, when the second interface is displayed, the names of the function items are displayed in a faded manner. In this way, the names of the function items gradually change from light to dark, and the names of the function items are dynamically displayed, so that the interface changes dynamically, which can bring a better user experience.

[0035] As an embodiment of the first aspect of the present application, the method further includes:

[0036] When the first interface is displayed, in response to receiving a third operation acting on the first interface, the screen is switched to display a new first interface.

[0037] This speeds up the switching speed of the icons of the function items displayed in the first interface, facilitates the user to quickly traverse the icons of all enabled function items in the wearable device, and speeds up the user's search for the required function items.

[0038] As an embodiment of the first aspect of the present application, the method further includes:

[0039] When the second interface is displayed, in response to receiving a fourth operation acting on the second interface, a new second interface is displayed by sliding.

[0040] This allows the user to browse the icons and names of the function items line by line, and then accurately locate the function item they need.

[0041] As an embodiment of the first aspect of the present application, the icons located at the edge of the icon interface include: icons of the top row of function items in the icon interface of the control center, or icons of the top row of function items in the icon interface of the view list.

[0042] As an embodiment of the first aspect of the present application, when an icon located at an edge of an icon interface is displayed on the first interface, receiving a first operation acting on the first interface includes:

[0043] When the first interface has traversed and displayed icons of all function items in the icon interface and icons located at an edge of the icon interface are displayed, a first operation acting on the first interface is received.

[0044] This can effectively confirm that the user has browsed all icons and has not found the icon of the function item they need, which can reduce the occurrence of accidental mode switching, and thus reduce the disturbance to the user caused by frequent switching of display modes.

[0045] As an embodiment of the first aspect of the present application, in response to determining that the first operation is completed, the second interface is displayed. This allows the display of the function item name to be independent of whether the user's first operation is completed, thereby enabling the function item name to be displayed promptly, thereby improving the speed of switching from displaying only the icon to displaying both the icon and the name.

[0046] As an embodiment of the first aspect of the present application, the method further includes:

[0047] When the second interface is displayed, if you leave the scene corresponding to the second interface and then return to the scene, the first interface will be displayed.

[0048] This allows the name of the function item to be temporarily displayed when the user has difficulty finding the function item, without causing a long-term mode switch for the entire scene due to a temporary mode switch during a search process. While making it convenient for users to find the required function items, it also reduces the trouble of device settings for users.

[0049] In a second aspect, the present application further provides a wearable device, comprising:

[0050] one or more processors and memory;

[0051] The memory is coupled to the one or more processors, and the memory is used to store computer program code, wherein the computer program code includes computer instructions, and the one or more processors call the computer instructions to enable the wearable device to execute the method as described in any one of the solutions in the first aspect above.

[0052] In a third aspect, the present application further provides a computer-readable storage medium comprising a computer program. When the computer program is run on a wearable device, the wearable device executes the method described in any one of the solutions in the first aspect above.

[0053] In a fourth aspect, the present application further provides a computer program product, which includes executable instructions. When the executable instructions are executed on a wearable device, the wearable device executes the method described in any one of the solutions in the first aspect above.

[0054] In the fifth aspect, the present application also provides a chip system, which is applied to a wearable device. The chip system includes one or more processors, and the processor is used to call computer instructions to enable the wearable device to input data into the chip system and execute the method described in any of the solutions in the first aspect to display information.

[0055] The beneficial effects of the solutions provided by the embodiments in the second, third, fourth and fifth aspects can be referred to the beneficial effects of the solutions provided by the embodiments in the first aspect. BRIEF DESCRIPTION OF THE DRAWINGS

[0056] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following is a brief introduction to the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0057] Figure 1 A schematic diagram of a wearable device dial interface provided in an embodiment of the present application;

[0058] Figure 2 A schematic diagram of an icon interface provided in an embodiment of the present application;

[0059] Figure 3a-3c A schematic diagram of an interface for user interaction with a wearable device in an icon interface provided by an embodiment of the present application;

[0060] Figure 3d A schematic diagram of another icon interface provided in an embodiment of the present application;

[0061] Figure 4a-4b A schematic diagram of an icon name interface provided in an embodiment of the present application;

[0062] Figure 4c A schematic diagram of an icon name interface with a changing display provided in an embodiment of the present application;

[0063] Figure 4d A schematic diagram of an icon name interface provided in an embodiment of the present application;

[0064] Figure 4e A schematic diagram of an icon name interface movement provided in an embodiment of the present application;

[0065] Figure 4f A schematic diagram of an interface for prompting information provided in an embodiment of the present application;

[0066] Figure 4g-4h A schematic diagram of an interface for prompting information changes provided in an embodiment of the present application;

[0067] Figure 5 A schematic diagram of another icon interface provided in an embodiment of the present application;

[0068] Figure 6a-6b A schematic diagram of another interface for user interaction with a wearable device in an icon interface provided by an embodiment of the present application;

[0069] Figure 7a-7b A schematic diagram of another icon name interface provided in an embodiment of the present application;

[0070] Figure 7c A schematic diagram of another icon name interface with a change in display provided in an embodiment of the present application;

[0071] Figure 7d A schematic diagram of another icon name interface movement provided in an embodiment of the present application;

[0072] Figure 7eA schematic diagram of another prompt information interface provided in an embodiment of the present application;

[0073] Figure 7f-7g A schematic diagram of another interface for prompting information changes provided in an embodiment of the present application;

[0074] Figure 8 A flow chart of a display method provided in an embodiment of the present application;

[0075] Figure 9 A schematic structural diagram of a wearable device provided in an embodiment of the present application;

[0076] Figure 10 A software structure block diagram of a wearable device provided in an embodiment of the present application. DETAILED DESCRIPTION

[0077] In order to better understand the technical solution of the present application, the embodiments of the present application are described in detail below with reference to the accompanying drawings.

[0078] In order to facilitate the clear description of the technical solutions of the embodiments of the present application, in the embodiments of the present application, words such as "first" and "second" are used to distinguish between identical or similar items with substantially the same functions and effects. For example, the first instruction and the second instruction are intended to distinguish different user instructions and do not limit their order. Those skilled in the art will understand that words such as "first" and "second" do not limit the quantity and execution order, and words such as "first" and "second" do not necessarily limit them to be different.

[0079] It should be noted that, in this application, words such as "exemplarily" or "for example" are used to indicate examples, illustrations, or explanations. Any embodiment or design described in this application as "exemplary" or "for example" should not be construed as being preferred or advantageous over other embodiments or designs. Rather, the use of words such as "exemplarily" or "for example" is intended to present the relevant concepts in a concrete manner.

[0080] Wearable devices are portable devices that can be worn directly on the user or integrated into clothing or accessories. Wearable devices are more than just hardware; they enable powerful functionality through software support, data interaction, and cloud-based interaction. Wearable devices have significantly transformed users' lives and perceptions.

[0081] In some cases, wearable devices exist as portable accessories with partial computing capabilities that can connect to mobile phones and various terminals. Based on product form, wearable devices can include: wrist-supported devices, such as smart watches, smart bracelets, and smart wristbands; foot-supported devices, such as those worn on shoes, socks, and legs; and head-supported devices, such as smart glasses, smart helmets, and smart headbands. The above-mentioned wearable devices in different product forms are merely examples, and this application does not limit the specific form of wearable devices.

[0082] Wearable devices can provide various functional items, each of which can provide corresponding functions. These functional items can be factory-set functional items or various applications installed by the user according to their needs during use. Each functional item is provided with a corresponding icon, and the user can open the functional item by clicking the icon to use the corresponding function. Among them, the factory-set functional items can be some plug-ins that implement the functions or applications, which are not limited in this application.

[0083] For example, the above-mentioned function items may be a flashlight, an alarm clock, volume, etc., and the above-mentioned function items may also be a beauty camera, Alipay, WeChat chat, etc.

[0084] Wearable devices can display icon interfaces. As wearable devices incorporate more and more functions, the number of icons included in these interfaces also increases, making it difficult for users to find the functions they need. Furthermore, wearable device screens are generally smaller than those of mobile phones, tablets, and other devices, so the icons displayed on wearable device screens are also typically smaller, making it difficult for users to find the functions they need.

[0085] In summary, it is difficult and inefficient for users to find function items in wearable devices, especially for users who are not familiar with the icons of various function items.

[0086] In order to solve the above technical problems, an embodiment of the present application provides a display method. Taking a smart watch as an example, the following detailed description is given through two scenarios: the control center and the application list, combined with the drawings in the specification and the following multiple embodiments.

[0087] The above-mentioned smart watch has a touch-operable display screen, which is also referred to as a screen in the embodiment of the present application.

[0088] The control center is described below through Embodiments 1 to 6.

[0089] The control center is a collection of functions for controlling a smartwatch (wearable device). Each function in the control center corresponds to one or more functions for controlling the smartwatch. The functions in the control center can be factory-set functions for the smartwatch. For example, these functions can include settings, flight mode, battery management, and so on.

[0090] Example 1

[0091] For ease of description, in this embodiment, the process of a user operating a smartwatch is divided into five stages and described stage by stage.

[0092] In the first stage, turn on the screen until the default icon interface is displayed;

[0093] When the smartwatch is in black screen mode, touching the screen with your finger will light up the screen and display the watch face interface. Figure 1 , shows a schematic diagram of a dial interface of a smart watch. Of course, in some cases, pressing the button on the side of the watch body can also trigger the screen to light up. This application does not limit the method of triggering the screen to light up.

[0094] Finger in Figure 1 By sliding on the dial interface 100 shown, or pressing the button on the side of the watch body, the smart watch can enter the control center, and the default icon interface of the control center is displayed on the screen. The default icon interface includes the icons in the default area of the complete icon interface.

[0095] Here, the complete icon interface includes icons of all function items in the control center. In this embodiment, the icons in the complete icon interface are arranged in rows and columns from top to bottom. For example, see Figure 2 A schematic diagram of icon interface 200 is shown, where the upper portion of interface 200 is the top portion of the interface and the lower portion is the bottom portion of the interface. Interface 200 includes icons for all functional items in the control center. In addition, in addition to the long strip arrangement shown in interface 200, the icons can also be arranged in a checkerboard pattern, which is not limited in this application.

[0096] The aforementioned default area may be the area where several rows of icons are located at the bottom of a complete icon interface, for example, the area where the bottom two rows of icons are located, the area where the bottom three rows of icons are located, and so on.

[0097] See also Figure 2 The area enclosed by the dotted line frame 201 is the default area. The dotted line frame 201 encloses the area where the two bottom rows of icons in the complete icon interface are located. The default icon interface can be seen in Figure 3a The interface 300 shown includes 6 icons framed by a dotted frame 201 .

[0098] The sliding operation performed by a finger on the watch face interface 100 can be understood as an operation in which a finger touches the screen and slides a certain distance on the screen. The finger touching the screen can be a single finger or multiple fingers, that is, the sliding operation can be a single-finger sliding operation or a multi-finger sliding operation.

[0099] The sliding direction of the finger can be from top to bottom, from bottom to top, from left to right, or from right to left. This application does not limit the sliding direction.

[0100] Stage 2: Slide on the icon interface;

[0101] A finger can be swiped (a third operation) on the icon interface (the first interface) displayed on the screen, and the icons in the icon interface displayed on the screen will change accordingly. When the above-mentioned default area is the area where several rows of icons are located at the bottom of the complete icon interface, the new icons will appear only when the finger is swiped downward on the icon interface displayed on the screen. Therefore, in this case, the finger needs to swipe from the top to the bottom on the icon interface displayed on the screen.

[0102] In one implementation, after a finger slides on an icon interface displayed on the screen, the screen switches to display a new icon interface, that is, all icons displayed on the screen are removed from the screen and replaced by new icons.

[0103] See also Figure 2 , dotted boxes 201-203 respectively frame the areas where the icons in different rows of the interface 200 are located, and the areas framed by the three dotted boxes are adjacent to each other. When the finger slides from top to bottom on the interface 300, the screen displays Figure 3b In the interface 301 shown, the icons in the interface 301 are the icons in the dotted box 202. That is, after the finger slides from top to bottom in the interface 300, all the icons in the interface 300 are removed from the screen, and the icon interface displayed on the screen shows 6 new icons framed by the dotted box 202. Similar to the sliding operation of the finger on the interface 300, when the finger slides from top to bottom on the interface 301, all the icons in the interface 301 are removed from the screen, and the screen displays as shown below. Figure 3c The interface 302 shown, namely, displays the icon enclosed by the dotted frame 203 .

[0104] As can be seen from the above, in this case, after the finger slides on the icon interface displayed on the screen, the icons displayed on the entire screen are switched, that is, the screen is switched, which speeds up the switching speed of the icons of the displayed function items, making it easier for users to quickly traverse the icons of all function items in the control center of the smart watch, and speeding up the speed at which users find the required function items.

[0105] In addition, the icons displayed on interface 302 are already the icons in the top row of interface 200 (the icons located at the edge of the icon interface), that is, the icons at the top of interface 200. Therefore, even if the finger slides downward on interface 302, no new icons will appear. At this point, all the icons in interface 200 have been traversed and displayed in the icon interface displayed on the screen.

[0106] To sum up the above, in this implementation method, after the finger slides on the icon interface displayed on the screen, the area of the icon in the new icon interface displayed on the screen and the area of the icon in the complete icon interface are adjacent to the sliding direction. Here, the sliding direction is from top to bottom.

[0107] In another implementation, after a finger slides on the icon interface displayed on the screen, a new icon interface is scrolled and displayed. That is, part of the icons displayed on the screen moves out of the screen, and some new icons move into the screen.

[0108] See also Figure 2 , in the dotted boxes 201, 204, 202 and 205, the areas framed by adjacent boxes in the interface 200 overlap with the area of a row of icons. When the finger slides from top to bottom on the interface 300, the icons displayed on the screen are the icons in the dotted box 204. That is, after the finger slides from top to bottom on the interface 300, the bottom row of icons in the interface 300 moves off the screen, and the icon interface displayed on the screen displays the six icons framed by the dotted box 204. Similar to the sliding operation of the finger on the interface 300, when the finger continues to slide from top to bottom, the bottom row of icons in the screen display interface moves off the screen, and the screen displays the icons framed by the dotted box 202. When the finger continues to slide from top to bottom, the bottom row of icons in the screen display interface moves off the screen, and the screen displays the icons framed by the dotted box 205.

[0109] As can be seen from the above, in this case, after the finger slides on the icon interface displayed on the screen, some of the icons displayed on the screen are switched, that is, the icons are switched by sliding, so that the user can have enough time to find the icon of the required function item, which provides convenience for the user to find the required function item and improves the user experience.

[0110] In addition, the icons enclosed by the dotted frame 205 are already in the top row of icons in the interface 200 (the icons located at the edge of the icon interface), that is, the icons at the top of the interface 200. Therefore, even if the finger continues to slide downward, no new icons will appear. At this point, all icons in the interface 200 have been traversed and displayed in the icon interface displayed on the screen.

[0111] To sum up the above, in this implementation method, after the finger slides on the icon interface displayed on the screen, the displayed icon moves out of the screen along the sliding direction with a set step length, and the new icon moves into the screen along the sliding direction with a set step length. The above step length can be an icon row, such as one row.

[0112] In addition, the above-mentioned finger sliding operation on the icon interface displayed on the screen can be performed within a set area on the icon interface displayed on the screen. For example, the sliding operation can be performed within an area of a set size including the center of the interface, or within an area of a set size at the top of the interface, or within an area of a set size at the bottom of the interface.

[0113] In stage three, the icon interface switches to the icon name interface;

[0114] Continuing with the process described above, the icon interface displayed on the screen at this time includes the icons at the top of the complete icon interface (the icons located at the edge of the icon interface). In addition, since the aforementioned default area is the area where the bottom several rows of icons are located in the complete icon interface, the icons displayed on the screen at this time include the icons at the top of the complete icon interface. This also indicates that the icon interface displayed on the screen has traversed and displayed all the icons contained in the complete icon interface. At this time, if the finger is still sliding from top to bottom on the icon interface displayed on the screen, it means that the user has not found the function item they need and wants to continue searching, which also reflects that the user has encountered difficulties in finding the required function item.

[0115] In view of this, the solution provided in this embodiment switches the mode in which the smart watch displays function item information from icon display mode to icon name display mode. In the icon name display mode, not only the icon of the function item but also the name of the function item is displayed. This provides users with more information to assist users in finding the function items they need, thereby improving the efficiency of users in finding the function items they need.

[0116] Specifically, if the icon interface displayed on the screen contains the complete icon at the top of the icon interface, at this time, if the finger continues to slide from top to bottom (first operation) on the icon interface displayed on the screen (first interface) for a certain duration (first duration), such as 1.5 seconds, 2 seconds, etc., the icon name interface (second interface) is displayed.

[0117] When triggering the icon name interface, the finger may or may not be lifted from the screen, and this application does not limit this.

[0118] In one implementation, after the finger continues to slide from top to bottom on the icon interface displayed on the screen for a certain period of time, if the finger is lifted from the screen (the first operation is completed), the icon name interface can be displayed at this time.

[0119] For example, when the screen displays interface 302 (first interface), the finger continues to slide from top to bottom (first operation) on the interface 302 for 1.5 seconds (first duration), and the screen displays Figure 4a Interface 400 (second interface) is shown. In addition to displaying the icon of the edit function item, interface 400 also displays the name of this function item "Edit". In this way, users can search for function items based on the icon as well as the name, thereby improving the speed and efficiency of searching for function items.

[0120] Of course, the interface 400 may also be displayed after the finger is lifted from the screen.

[0121] In the icon name interface, in addition to the name of the function item being located below the icon of the function item as shown in interface 400, the name of the function item can also be Figure 4b In the illustrated interface 401 , the name of the function item is located above the icon of the function item. In addition, the name of the function item may also be located on the left or right side of the icon of the function item, etc. This application does not limit this.

[0122] In addition, when displaying the icon name interface, in addition to directly and clearly displaying the name of the function item, in one implementation, the name of the function item can also be displayed in a faded manner, wherein the faded manner can be understood as a display manner in which the text gradually changes from blurry to clear, or a display manner in which the color of the text gradually changes from light to dark. Figure 4c In the interfaces 402, 403 and 404 shown in FIG, the name of the function item "Edit" gradually becomes clear from blurry. Displaying the name of the function item in a dynamic form makes the interface change dynamically, which can bring a better experience to the user.

[0123] The aforementioned interface 400 is the interface displayed on the screen after the finger continues to slide from top to bottom on the interface 302 for a certain period of time, and the display mode is switched. From the perspective of the interface content, the interface 400 includes all the icons in the interface 302 and the name of the function item represented by each icon.

[0124] However, in some cases, before switching modes, the icon interface displayed on the screen may contain many icons. Since the icon name interface contains not only the icons of the function items but also the names of the function items, if the function item icons remain the same size, displaying the function item names below or above the icons may cause some of the function item icons to move downward, partially or completely off the screen. Therefore, in one implementation, only some of the icons in the icon interface and the names of the function items represented by the icons are fully displayed in the icon name interface.

[0125] See also Figure 3d The middle interface 303 (first interface) includes two rows of icons. This interface is the interface displayed on the screen after sliding to the top of the complete icon interface. If the finger continues to slide from top to bottom on the interface 303 (first operation) for 1.5 seconds, the screen may display the following Figure 4d In the interface 405 shown, since the name of the function item "Edit" is inserted below the icon of the editing function item in the interface 405, from the perspective of the screen size, the icon size and the size of the function item name, only one row (the first number) of icons can be fully displayed in the interface 405. This causes the second row of icons in the interface 303 to move downward (the moving direction of the first operation indication) and partially move out of the screen. Therefore, the interface 405 includes the complete icons in the first row of the interface 303 and the names of the function items represented by the icons. Due to the screen size of the smart watch, the three icons in the second row of the interface 303 are partially moved out of the screen and are difficult to display in full, and thus it is difficult to display the names of the function items represented by the three icons.

[0126] Of course, the above interface 405 may be displayed only after the finger is lifted from the screen.

[0127] In addition, since the operation performed by the finger on the interface 303 is a sliding operation from top to bottom, the sliding direction indicated by the operation is downward, so the icons located in the first row (icon unit) in the priority selection interface 303 are fully displayed in the interface 405; and if the operation performed by the finger on the interface is a sliding operation from bottom to top, the sliding direction indicated by the operation is upward, then the icons located in the second row (icon unit) in the priority selection interface 303 are fully displayed in the new interface.

[0128] In summary, it can be seen that after the mode is switched, due to the size of the smartwatch screen, when all the icons in the icon interface before the switch cannot be fully displayed, the number (first number) of icon rows (icon units) displayed in the interface after the mode switch can be determined based on the size of the screen, that is, the interface area that the screen can cover. Then, along the direction of the operation indicated by the finger on the interface, the icon rows to be fully displayed are determined from the icon interface before the switch. In this way, after the names of the function items are added to the interface after the mode switch, they can not only correspond to the interface before the mode switch, but also take into account the screen size, so that the icons and names seen by the user will not jump, and the visual experience is better.

[0129] In order to let the user feel that the smart watch is responsive when the finger continues to slide from top to bottom on the interface 302, after the screen displays the above interface 302, when the finger continues to slide from top to bottom on the interface 302, the interface 302 can move downward in the direction of the sliding operation, so that the area of the screen except the interface 302 forms an out-of-range area, and as the sliding operation proceeds, the out-of-range area gradually increases. Figure 4e In the interface shown in FIG, the areas of the two interfaces that are moved out gradually increase from left to right. When the finger is lifted from the screen, interface 302 moves upward, that is, interface 302 rebounds, and interface 302 covers the area of the movement out. Then, the area of the movement out disappears, and the screen immediately displays interface 400. This can improve the interactivity between the user and the smartwatch, greatly enhancing the user experience.

[0130] The removal area is located above the interface 302 .

[0131] To let users know more intuitively that their continued sliding operation will trigger a mode switch, a prompt message can be displayed in the above-mentioned removal area after the finger continues to slide from top to bottom on interface 302 for a certain period of time (a first duration). For example, the prompt message can be: icon + name, etc. In this way, users can intuitively and clearly know the upcoming changes in the interface, enhancing the user experience.

[0132] For example, a finger slides from top to bottom on the interface 302. As the finger slides, the interface 302 moves downward, and the area of the screen other than the interface 302 forms an out-of-area. Then, as the finger slides, the out-of-area increases. After the finger slides for 1.5 seconds, for example, a prompt message "icon + name" is directly and clearly displayed in the out-of-area. The interface can be seen in FIG. Figure 4f Interface 406 is shown.

[0133] For another example, a finger slides from top to bottom on the interface 302. As the finger slides, the interface 302 moves downward, and the area outside the interface 302 on the screen forms an exit area. Then, as the sliding continues, the exit area increases. After the sliding duration reaches, for example, 1.5 seconds, as the sliding operation continues, the prompt information is gradually displayed in the exit area along the downward sliding direction according to the set step size 1 (the first preset step size), thus forming an effect that the prompt information is gradually pulled out. Figure 4g In the three interfaces shown, the prompt information "icon + name" is gradually pulled out from top to bottom and displayed in full. This dynamic display of the prompt information makes the interface dynamically change, which can bring a better user experience.

[0134] The setting step size 1 may be described in units of pixel rows, for example, 3 pixel rows, 5 pixel rows, and so on.

[0135] As described above, after you lift your finger from the screen, the icon interface displayed on the screen can rebound and disappear from the area. Accordingly, if a prompt message is displayed in the area, you can also hide the prompt message as follows. This can make the interface displayed on the screen more concise and clear.

[0136] For example, after the finger is lifted from the screen, the prompt information displayed in interface 406 is directly hidden.

[0137] For another example, after the finger is lifted from the screen, the prompt information displayed in the interface 406 is gradually hidden from bottom to top along the upward rebound direction with a set step size of 2 (the second preset step size). Figure 4h In the two interfaces shown, the prompt information "icon + name" is gradually hidden from bottom to top. This dynamic hiding of the prompt information makes the interface change dynamically, which can bring a better experience to the user.

[0138] In addition, in addition to triggering the prompt information to hide after the finger is lifted from the screen, the prompt information can also be triggered to hide after the prompt information is displayed for a certain period of time (second period of time). For example, the period of time can be 1 second, 5 seconds, etc.

[0139] Stage 4: Slide on the icon name interface;

[0140] After sliding your finger from top to bottom in the aforementioned interfaces, the icon in the icon name interface displayed on the screen is the icon at the top of the icon interface. At this time, you can slide your finger from bottom to top to make the screen display the icon at the bottom of the icon interface.

[0141] For example, after a finger slides upward from bottom to top on interface 400 (the second interface) (the fourth operation), the icons and names in the icon name interface displayed on the screen also change accordingly. The screen can slide and display the icons of each icon in the icon interface and the names of the function items represented by the icons according to the sliding range of the sliding operation. This allows the user to browse the icons and names of the function items row by row, and then accurately locate the function item they need.

[0142] Stage 5: The interface returns and re-enters the icon interface;

[0143] When the screen displays an icon name interface, such as the aforementioned interface 400, the user can also press a button on the side of the smartwatch or tap the back button on the screen to exit the control center and return to the previous interface. For example, this can return to the previous interface or the home screen. After returning to the previous interface, the user can re-enter the control center by pressing the side button of the smartwatch or swiping on the screen. This will cause the screen to display the icon interface again. Although the process described above indicates that the smartwatch has already switched to icon name mode, upon returning to the previous interface, the icon name mode becomes inactive and the icon mode remains in effect. Therefore, upon receiving a user action again, the screen will still display the icon interface. This allows the function item names to be temporarily displayed when the user has difficulty finding the function item, eliminating the need for long-term mode switching caused by a temporary mode switch during a search. This makes it easier for users to find the desired function item while reducing the hassle of device setup.

[0144] For example, when the screen displays interface 400, the finger presses the button on the side of the smart watch, and the screen displays Figure 1 The dial interface 100 shown in the figure, at this time the finger slides on the dial interface 100 again, and the screen displays Figure 3a Interface 300 is shown instead of Figure 4a Interface 400 is shown.

[0145] The above embodiment 1 is based on the following information:

[0146] The default area is the area where several rows of icons are located at the bottom of the complete icon interface. When a finger slides from top to bottom in the icon interface, the exit area is located above the icon interface.

[0147] In the specific implementation process, the above information may have different values, but the operation process of the smart watch under these different information and the response process of the smart watch are similar to those in Example 1. The following examples 2 to 6 briefly describe the operation process of the smart watch under different information and the response process of the smart watch. Examples 2 to 6 only focus on the parts that differ from Example 1.

[0148] Example 2

[0149] The default area is the area where the top rows of icons are located in the complete icon interface. When a finger slides from bottom to top in the icon interface, the area to be moved out is located at the bottom of the icon interface. In this embodiment, the upper part of the complete icon interface is still considered to be the top and the lower part is the bottom.

[0150] In this case, for the aforementioned stage one, the only difference from embodiment one is the default area. In this embodiment, the default area is the area where the top several rows of icons in the complete icon interface are located, for example, the area where the top two rows of icons in the complete icon interface are located. This stage will not be described in detail here.

[0151] For stage two, in this embodiment, the finger slides from bottom to top on the icon interface displayed on the screen, causing the icons displayed on the screen to change. As the finger slides, the screen displays the icons in the bottom row of the complete icon interface (the icons located at the edge of the icon interface). Since the default area is the area where the top several rows of icons in the complete icon interface are located, this also indicates that all the icons in the complete icon interface have been traversed and displayed on the screen.

[0152] For stage three, following stage two, if the finger continues to slide from bottom to top on the screen, the icon interface displayed on the screen gradually moves out of the screen. At this time, the moving-out area is located below the interface, and a prompt message is displayed in the moving-out area. When the duration of the sliding operation from bottom to top reaches the set duration, for example 1.5 seconds, the screen displays the icon name interface.

[0153] For stage four, when a finger slides from top to bottom on the icon name interface displayed on the screen, the icons at the top of the icon interface are scrolled and displayed on the screen.

[0154] Phase 5 is the same as Phase 5 in the aforementioned embodiment 1 and will not be described again here.

[0155] Example 3

[0156] The above-mentioned default area can also be the area in the middle part of the complete icon interface where several rows of icons are located, wherein the above-mentioned middle part refers to the rows other than the top and bottom rows of the complete icon interface, for example, the area where the two middle rows of icons are located. In this case, swiping your finger from the bottom to the top of the icon interface displayed on the screen cannot traverse all function item icons, nor can swiping from the top to the bottom of the icon interface displayed on the screen. Instead, swiping in both directions is required to complete the icon traversal. A brief explanation is given below.

[0157] For the aforementioned stage one, the only difference from embodiment one is the default area. In this embodiment, the default area is the area where several rows in the middle part of the complete icon interface are located, for example, the area where the two middle rows of icons in the complete icon interface are located. This stage will not be described in detail here.

[0158] For Phase 2, there are two situations, which are described in detail below:

[0159] Case 1: The finger slides from bottom to top on the icon interface displayed on the screen, causing the icons displayed on the screen to change. As the finger slides, the screen displays the icons in the bottom row of the complete icon interface. At this time, all the icons in the complete icon interface have not been traversed and displayed on the screen, and the execution of stage three will not be triggered. At this time, if the finger changes the sliding direction and slides from top to bottom until the screen displays the icons in the top row of the complete icon interface, all the icons in the complete icon interface have been traversed and displayed on the screen.

[0160] In this case, the remaining stages three to five are consistent with the aforementioned embodiment one and will not be described in detail here.

[0161] Case 2: The finger slides from top to bottom on the icon interface displayed on the screen, causing the icons displayed on the screen to change. As the finger slides, the screen displays the icons in the top row of the complete icon interface. At this time, the screen has not yet traversed and displayed all the icons in the complete icon interface, and the execution of stage three will not be triggered. At this time, if the finger changes the sliding direction and changes to sliding from bottom to top until the screen displays the icons in the bottom row of the complete icon interface, the screen has traversed and displayed all the icons in the complete icon interface.

[0162] In this case, the remaining stages three to five are consistent with those in the aforementioned embodiment two and are not described in detail here.

[0163] Example 4

[0164] The default area is the area where the bottom several columns of icons are located in the complete icon interface. When a finger slides from left to right in the icon interface, the area to be moved out is located on the left side of the icon interface. In this embodiment, the left side of the complete icon interface can be considered as the top and the right side as the bottom.

[0165] In this case, for the aforementioned stage one, the only difference from embodiment one is the default area. In this embodiment, the default area is the area where several columns at the bottom of the complete icon interface are located, for example, the area where the two rightmost columns of icons in the complete icon interface are located. This stage will not be described in detail here.

[0166] For stage two, in this embodiment, the finger slides from left to right on the icon interface displayed on the screen, causing the icons displayed on the screen to change. As the finger slides, the screen displays the icons in the leftmost column of the complete icon interface (the icons located at the edge of the icon interface). Since the default area is the area where several columns of icons at the bottom of the complete icon interface are located, this also indicates that all the icons in the complete icon interface have been traversed and displayed on the screen.

[0167] For stage three, following stage two, if the finger continues to slide from left to right on the screen, the icon interface displayed on the screen gradually moves out of the screen. At this time, the moving-out area is located on the left side of the interface, and a prompt message is displayed in the moving-out area. The duration of the sliding operation from left to right reaches the set duration, for example 1.5 seconds, and the screen displays the icon name interface.

[0168] For stage four, when a finger slides from right to left on the icon name interface displayed on the screen, the icons on the right side of the icon interface are scrolled and displayed on the screen.

[0169] Phase 5 is the same as Phase 5 in the aforementioned embodiment 1 and will not be described again here.

[0170] Example 5

[0171] The default area is the area where the top several columns of icons are located in the complete icon interface. When a finger slides from right to left in the icon interface, the area to be moved out is on the right side of the icon interface. In this embodiment, the left side of the complete icon interface can be considered as the top and the right side as the bottom.

[0172] In this case, for the aforementioned stage one, the only difference from embodiment one is the default area. In this embodiment, the default area is the area where several columns at the top of the complete icon interface are located, for example, the area where the two leftmost columns of icons in the complete icon interface are located. This stage will not be described in detail here.

[0173] For stage two, in this embodiment, the finger slides from right to left on the icon interface displayed on the screen, causing the icons displayed on the screen to change. As the finger slides, the screen displays the icons in the rightmost column of the complete icon interface (the icons located at the edge of the icon interface). Since the default area is the area where the top several columns of icons in the complete icon interface are located, this also indicates that all the icons in the complete icon interface have been traversed and displayed on the screen.

[0174] For stage three, following stage two, if the finger continues to slide from right to left on the screen, the icon interface displayed on the screen gradually moves out of the screen. At this time, the moving-out area is located on the right side of the interface, and a prompt message is displayed in the moving-out area. The duration of the sliding operation from right to left reaches the set duration, for example 1.5 seconds, and the screen displays the icon name interface.

[0175] For stage four, when a finger slides from left to right on the icon name interface displayed on the screen, the icons on the left side of the icon interface are scrolled and displayed on the screen.

[0176] Phase 5 is the same as Phase 5 in the aforementioned embodiment 1 and will not be described again here.

[0177] Example 6

[0178] Corresponding to the fourth and fifth embodiments above, the default area may also be the area in the middle portion of a complete icon interface where several columns of icons are located, wherein the middle portion is the area where the columns other than the top and bottom columns of the complete icon interface are located, for example, the area where the two middle columns of icons are located. In this case, sliding your finger from left to right alone in the icon interface displayed on the screen cannot traverse all icons of function items, nor can sliding your finger from right to left alone traverse all icons of function items. Instead, operations in both directions are required to complete icon traversal. A brief explanation is given below.

[0179] For the aforementioned stage one, the only difference from embodiment one is the default area. In this embodiment, the default area is the area where several columns in the middle part of the complete icon interface are located, for example, the area where the two middle columns of icons in the complete icon interface are located. This stage will not be described in detail here.

[0180] For Phase 2, there are two situations, which are described in detail below:

[0181] Case 1: The finger slides from right to left on the icon interface displayed on the screen, causing the icons displayed on the screen to change. As the finger slides, the screen displays the icons in the rightmost column of the complete icon interface. At this time, the screen has not yet traversed and displayed all the icons in the complete icon interface, and the execution of stage three will not be triggered. At this time, if the finger changes the sliding direction again and slides from left to right until the screen displays the icons in the leftmost column of the complete icon interface, the screen has traversed and displayed all the icons in the complete icon interface.

[0182] In this case, the remaining stages three to five are consistent with those in the aforementioned fourth embodiment and will not be described in detail here.

[0183] Case 2: The finger slides from left to right on the icon interface displayed on the screen, causing the icons displayed on the screen to change. As the finger slides, the screen displays the icons in the leftmost column of the complete icon interface. At this time, the screen has not yet traversed and displayed all the icons in the complete icon interface, and the execution of stage three will not be triggered. At this time, if the finger changes the sliding direction again, changing to sliding from right to left, until the screen displays the icons in the rightmost column of the complete icon interface, the screen has traversed and displayed all the icons in the complete icon interface.

[0184] In this case, the remaining stages three to five are consistent with the aforementioned embodiment five and will not be described in detail here.

[0185] The application list is described below through Embodiments 7 to 8.

[0186] The app list is a collection of apps, including icons for various apps installed on your smartwatch. These apps can be factory-installed or installed by the user based on their needs.

[0187] Example 7

[0188] Finger in Figure 1 By sliding on the dial interface 100 shown, or pressing the button on the side of the watch body, the smart watch can enter the application list, and the default icon interface of the application list is displayed on the screen. The default icon interface includes the icons in the default area of the complete icon interface.

[0189] Here, the complete icon interface includes icons of all applications in the application list. In this embodiment, the icons in the complete icon interface are arranged in rows and columns from top to bottom. For example, see Figure 5 A schematic diagram of an icon interface 500 is shown, wherein the upper portion of the interface 500 is the top portion of the interface and the lower portion is the bottom portion of the interface. Interface 500 includes icons for all applications in the application list. In addition, in addition to the long strip arrangement of icons shown in interface 500, the icons can also be arranged in a checkerboard pattern, which is not limited in this application.

[0190] The aforementioned default area may be the area where the top rows of icons are located in a complete icon interface, for example, the area where the top two rows of icons are located, the area where the top three rows of icons are located, and so on.

[0191] See also Figure 5 The area enclosed by the dotted line frame 501 is the default area. The dotted line frame 501 encloses the area where the top two rows of icons in the complete icon interface are located. The default icon interface can be seen in Figure 6a The interface 600 shown includes four icons framed by a dotted frame 501 .

[0192] Of course, the above default area can also be the area where other row icons are located in the complete icon interface. For example, Figure 5 The area enclosed by the dotted line frame 502 is the default icon interface. Figure 6b In the illustrated interface 601, the interface 601 includes four icons enclosed by a dotted box 502. In this case, the user slides their finger from top to bottom on the screen, and the icon interface displayed on the screen switches from interface 601 to interface 600 by switching the screen or sliding. That is, the interface moves to the top of the complete icon interface, and the icon interface displayed on the screen includes the icons contained in the top row.

[0193] In the case of screen display interface 600 (first interface), the icons in the top row of the complete icon interface of the application list (the icons located at the edge of the icon interface) are displayed. At this time, if the finger is still sliding from top to bottom on the icon interface displayed on the screen, and the duration of the sliding operation reaches a certain duration (first duration), such as 1.5 seconds, 2 seconds, etc., the mode of displaying function item information of the smart watch is switched from icon display mode to icon name display mode, and the icon name interface (second interface) is displayed. In this way, not only the application icon but also the application name is displayed, which provides the user with more information to assist the user in finding the application he needs, thereby improving the efficiency of the user in finding the application he needs.

[0194] In one implementation, the icon name interface is displayed only after the finger is lifted from the screen (the first operation is completed).

[0195] For example, when the screen displays interface 600 (first interface), the finger continues to slide from top to bottom (first operation) on the interface 600 for 1.5 seconds (first duration), and the screen displays Figure 7a Interface 700 (second interface) is shown. In addition to displaying the icons of the two applications "Documents" and "Calendar", interface 700 also displays the names of the two applications, "Documents" and "Calendar". In this way, users can search for applications by name in addition to searching by icon, thereby improving the speed and efficiency of searching for applications.

[0196] Of course, interface 700 may also be displayed after the finger is lifted from the screen.

[0197] In the icon name interface, in addition to the application name being located below the application icon as shown in interface 700, the application name can also be Figure 7b In the illustrated interface 701 , the name of the application is located above the application icon. The name of the application may also be located on the left or right side of the application icon, etc. This application is not limited to this.

[0198] In addition, when displaying the icon name interface, in addition to directly and clearly displaying the application name, in one implementation, the application name can also be displayed in a faded manner. Figure 7c In the interfaces 702, 703 and 704 shown in FIG, the names of the applications "Documents" and "Calendar" gradually become clearer from being blurred. Displaying the names of the function items in a dynamic form makes the interface change dynamically, which can bring a better experience to the user.

[0199] Similar to the situation described in the first embodiment, in order to let the user feel that the smart watch is responsive when the finger continues to slide from top to bottom on the interface 600, after the screen displays the above interface 600, when the finger continues to slide from top to bottom on the interface 600, the interface 600 can move downward in the direction of the sliding operation, so that the area outside the interface 600 on the screen forms an out-of-range area, and as the sliding operation proceeds, the out-of-range area gradually increases. Figure 7d In the interface shown in Figure 1, the areas of the two interfaces that are moved out gradually increase from left to right. When the finger is lifted from the screen, interface 600 moves upward, that is, interface 600 rebounds, and interface 600 covers the area of the movement. Then, the area of the movement disappears, and the screen displays interface 700. This can improve the interactivity between the user and the smartwatch, greatly enhancing the user experience.

[0200] The removal area is located above the interface 600 .

[0201] To let users know more intuitively that their continued sliding operation will trigger a mode switch, a prompt message can be displayed in the above-mentioned exit area after the finger continues to slide from top to bottom on interface 600 for a certain period of time. For example, the prompt message can be: icon + name, etc. This allows users to intuitively and clearly know the upcoming interface changes, enhancing the user experience.

[0202] For example, a finger slides from top to bottom on the interface 600. As the finger slides, the interface 600 moves downward, and the area outside the interface 600 on the screen forms an out-of-area. Then, as the finger slides, the out-of-area increases. After the finger slides for 1.5 seconds, for example, a prompt message "icon + name" is directly and clearly displayed in the out-of-area. The interface can be seen in FIG. Figure 7e Interface 705 is shown.

[0203] For another example, a finger slides from top to bottom on the interface 600. As the finger slides, the interface 600 moves downward, and the area outside the interface 600 on the screen forms an exit area. Then, as the sliding continues, the exit area increases. After the sliding duration reaches, for example, 1.5 seconds, as the sliding operation continues, the prompt information is gradually displayed in the exit area along the downward sliding direction according to the set step size 1 (the first preset step size), thus forming the effect that the prompt information is gradually pulled out. Figure 7f In the three interfaces shown, the prompt information "icon + name" is gradually pulled out from top to bottom and displayed in full. This dynamic display of the prompt information makes the interface dynamically change, which can bring a better user experience.

[0204] Corresponding to the above, after the finger is lifted from the screen, the prompt information displayed in the interface 705 can be directly hidden.

[0205] For another example, after the finger is lifted from the screen, the prompt information displayed in the interface 705 is gradually hidden from bottom to top along the upward rebound direction with a set step size of 2 (the second preset step size). Figure 7g In the two interfaces shown, the prompt information "icon + name" is gradually hidden from bottom to top. This dynamic hiding of the prompt information makes the interface change dynamically, which can bring a better experience to the user.

[0206] Next, when a finger slides upward from bottom to top on interface 700 (the second interface) (the fourth operation), the icons and names in the icon name interface displayed on the screen also change accordingly. The screen can slide and display the icons of each icon in the icon interface and the names of the functions represented by the icons according to the sliding range of the sliding operation. This allows the user to browse the icons and names of the function items row by row, and then accurately locate the function item they need.

[0207] In this embodiment, the situations in which icons displayed on the screen are not listed one by one in the application list scenario are the same as those in the aforementioned embodiment 1, so they will not be described in detail.

[0208] Example 8

[0209] The above-mentioned embodiment seven provides that when the screen displays the top row of icons in the complete icon interface of the application list, the finger continues to slide from top to bottom on the screen to trigger the display mode to switch from icon mode to icon name mode. Similarly, the above-mentioned mode switching can also be triggered when the screen displays the bottom row of icons in the above-mentioned complete icon interface and the finger continues to slide from bottom to top on the screen, the finger continues to slide from left to right on the screen for the top column icons, or the finger continues to slide from right to left on the screen for the bottom column icons. The specific processes are similar to those of the above-mentioned embodiment seven, and the only differences are the direction in which the interface moves out of the screen, the position of the area moved out, and the area where the prompt information is displayed. These are all determined along the direction in which the finger slides on the screen, and will not be described in detail here.

[0210] Next, combine Figure 8 The flowchart shown introduces the display solution provided by the embodiment of the present application.

[0211] See also Figure 8 , provides a flow chart of a display method, which is applied to a wearable device having a touch-operable display screen, and includes the following steps S801-S803.

[0212] Step S801: Display the first interface.

[0213] Among them, the first interface includes: icons of function items in the wearable device.

[0214] The first interface may be, for example, the Figure 3a-3d The interface shown can also be the aforementioned Figure 6a-6b The interface shown.

[0215] The above-mentioned function items can be a flashlight, setting, editing, etc., or various applications. This application does not limit the specific function items. As long as the function items correspond to the functions that can be realized by the wearable device, they can be used.

[0216] Step S802: When an icon located at an edge of the icon interface is displayed in the first interface, a first operation acting on the first interface is received.

[0217] Specifically, for the specific implementation method of displaying the icons located at the edge of the icon interface in the first interface, please refer to the relevant descriptions in the above-mentioned embodiments 1 to 8, which will not be described in detail here.

[0218] The above-mentioned first operation can be a sliding operation from top to bottom, a sliding operation from bottom to top, a sliding operation from left to right, a sliding operation from right to left, an operation of moving two fingers relatively close to each other, or an operation of clicking a direction button. For example, the above-mentioned direction button can be an up button, a down button, etc.

[0219] The icon interface mentioned in the above step S802 can be a complete icon interface corresponding to various scenarios, for example, the complete icon interface 200 corresponding to the control center scenario mentioned in the above embodiment, the complete icon interface 500 corresponding to the application list scenario, etc.

[0220] In one implementation, the icons located at the edge of the icon interface may include: icons of the top row of function items in the complete icon interface, icons of the bottom row of function items, icons of the leftmost column of function items, or icons of the rightmost column of function items. This application is not limited to this.

[0221] For example, the icons located at the edge of the icon interface may include: the icons of the top row of function items in the icon interface of the control center, or the icons located at the edge of the icon interface may include: the icons of the top row of function items in the icon interface of the view list.

[0222] For another example, the icons located at the edge of the icon interface may include: the icons of the bottom row of function items in the icon interface of the control center, or the icons located at the edge of the icon interface may include: the icons of the bottom row of function items in the icon interface of the view list, or the icons located at the edge of the icon interface may include: the icons of the leftmost column of function items in the icon interface of the control center, or the icons located at the edge of the icon interface may include: the icons of the leftmost column of function items in the icon interface of the view list, or the icons located at the edge of the icon interface may include: the icons of the rightmost column of function items in the icon interface of the control center, or the icons located at the edge of the icon interface may include: the icons of the rightmost column of function items in the icon interface of the view list.

[0223] In one implementation, the first operation on the first interface can be received when the first interface has traversed and displayed all icons of the function items in the icon interface and displayed an icon located at the edge of the icon interface. This can effectively confirm that the user has browsed all icons and has not found the icon of the function item they need, which can reduce the occurrence of accidental touches on mode switching, and further reduce the disturbance to the user caused by frequent switching of display modes. For the content of the traversal display of the function item icons, please refer to the description of stage 2 in the above-mentioned embodiments 1 to 6.

[0224] Step S803: In response to the duration of the first operation reaching the first duration, displaying the second interface.

[0225] The second interface includes: icons of function items in the first interface and names of function items.

[0226] The first duration mentioned above may be 1.5 seconds, 2 seconds, or the like.

[0227] When the second interface is displayed, the first operation may or may not have been completed, and this application does not limit this.

[0228] When the finger is lifted from the screen, it can be considered that the first operation is completed.

[0229] In one implementation, the second interface may include all or part of the icons included in the first interface. This allows for diversification of the forms of icons displayed on the second interface. Specifically, when all the icons included in the first interface are included in the second interface, due to the limited display size of the wearable device, if the display screen cannot fully display all of the above icons after adding the names of the function items, the icons of the function items can be reduced in size. Of course, if the display screen can fully display all of the above icons after adding the names of the function items, the display size of the function item icons can be left unchanged.

[0230] In one implementation, the icons included in the second interface are determined from the icons included in the first interface based on the screen size and the direction of the first operation instruction. Specifically, the icons included in the second interface can be determined in the following manner: a first number of icon units displayed in the second interface can be determined based on the size of the display screen, and then, along the movement direction of the first operation instruction, the icons included in the first number of icon units are determined from the icons included in the first interface as the icons included in the second interface.

[0231] The above icon unit can be an icon row or an icon column.

[0232] For example, the first number of icon rows that can be fully displayed in the second interface can be determined based on the height of the display screen, the height of the icon, and the height of the name. Then, from the icons included in the first interface, the first number of icon rows that are closer to the moving direction of the first operation instruction are selected, and the icons included in the selected icon rows are used as the icons included in the second interface. For example, the sum of the height of the icon and the height of the name can be calculated, and then the quotient of the height of the screen and the above sum can be used as the first number. For another example, if the moving direction of the first operation instruction is from top to bottom, the first number of icon rows above in the first interface are selected; if the moving direction of the first operation instruction is from bottom to top, the first number of icon rows below in the first interface are selected.

[0233] In this way, after adding the names of the function items in the second interface, they can not only correspond to the first interface, but also take into account the size of the display screen, so that the icons and names seen by the user will not jump, and the visual experience is better.

[0234] In one embodiment of the present application, in the second interface, the name of the function item is located below the icon of the function item. This corresponds to the visual habits of most users, allowing users to quickly understand the icon and name of the function item, thereby improving the efficiency of users in finding the required function item.

[0235] Of course, the name of the function item may also be located above the icon of the function item, or the name of the function item may be located on the left or right side of the shared icon, etc. This application does not limit this.

[0236] For the display methods of the names of the above different function items, please refer to the above Figure 4a Figure 4b The interface shown.

[0237] In the solution provided by this embodiment, when an icon located at the edge of the icon interface is displayed in the first interface, it means that the user has not found the function item he needs. It also shows from a certain perspective that the user has encountered difficulties in finding the function item he needs. This is the reason why the user keeps operating on the screen of the wearable device. In the solution provided by this embodiment, when it is found that the user has encountered difficulties in finding the function item he needs, not only the icon of the function item is displayed to the user, but also the name of the function item is displayed to the user. This provides more reference information for the user to find the function item, thereby facilitating the user to find the function item he needs, improving search efficiency, and quickly finding the required function item, thereby helping the user to achieve efficient and accurate access.

[0238] In addition, by performing the first operation for a certain period of time on the first interface to trigger the display of the function item name, the interaction is simple, and thus the user's desire to view the function item name can be satisfied through a simple interactive operation.

[0239] Furthermore, for the function item list and control center of the wearable device, even if the screen of the wearable device is small, the efficiency of the user finding the function items he needs and the readability of the function item information can be taken into account.

[0240] In one embodiment of the present application, in response to receiving a first operation, the first interface may move in the direction indicated by the first operation, with the area of the display screen other than the first interface forming an exit area; and after the first operation is completed, the first interface may move in the opposite direction of the direction indicated by the first operation, with the first interface covering the exit area. In this way, during the user operation, the first interface moves in accordance with the user's first operation, allowing the user to feel the wearable device's response to the first operation, thereby improving the interactivity between the user and the wearable device and significantly enhancing the user experience.

[0241] For an example of the first interface moving out of the screen, please refer to the above Figure 4e The interface changes process shown.

[0242] For example, when the first operation is a sliding operation from top to bottom, the moving direction indicated by the first operation is from top to bottom, so that the first interface moves from top to bottom, and the moving-out area is located above the first interface.

[0243] In one embodiment of the present application, before displaying the second interface, a prompt message may be displayed in the exit area in response to the duration reaching the first duration. Displaying the prompt message to the user before the mode switch occurs allows the user to intuitively and clearly understand the upcoming interface changes, thereby enhancing the user experience.

[0244] An interface for displaying prompt information can be found in the aforementioned Figure 4f The interface shown.

[0245] In one embodiment of the present application, when displaying prompt information in the exit area, the prompt information can be gradually displayed in the exit area along the movement direction of the first operation instruction and at a first preset step size. In this way, when displaying the prompt information, the prompt information is displayed in a dynamic form, making the interface dynamically changing, which can provide users with a better experience.

[0246] The first preset step size may be described in units of pixels. For example, the first preset step size may be 3 pixel rows, 5 pixel rows, and so on.

[0247] For the process of dynamically displaying prompt information, please refer to the above Figure 4g The interface shown.

[0248] In one embodiment of the present application, the prompt information can be hidden after the first operation is completed or after the prompt information is displayed for a second time period. Hiding the prompt information can make the interface more concise and clear.

[0249] For example, the second duration may be 1 second, 3 seconds, 5 seconds, and so on.

[0250] In one implementation, when hiding the prompt information, the prompt information can be gradually hidden in a second preset step size in the direction opposite to the movement direction of the first operation instruction. In this way, when hiding the prompt information, the prompt information is hidden in a dynamic manner, making the interface dynamically changing, which can provide a better user experience.

[0251] For example, if the moving direction of the first operation instruction is from top to bottom, the opposite direction is from bottom to top. The second preset step size is similar to the first preset step size and can also be described in pixels.

[0252] For the process of dynamically hiding the prompt information, please refer to the interface shown in 4h above.

[0253] In one embodiment of the present application, when the second interface is displayed, the name of the function item is displayed in a faded manner. In this way, the name of the function item is displayed in a dynamic form, so that the interface changes dynamically, which can bring a better experience to the user.

[0254] The process of dynamically displaying the name of the function item can be found in the above Figure 4c The interface shown.

[0255] In one embodiment of the present application, when the first interface is displayed, in response to receiving a third operation performed on the first interface, the screen can be switched to display a new first interface. This speeds up the switching speed of the icons of the function items displayed in the first interface, making it easier for the user to quickly traverse the icons of all enabled function items in the wearable device, and speeding up the user's search for the desired function item.

[0256] The third operation may be a swipe from top to bottom, a swipe from bottom to top, a swipe from left to right, a swipe from right to left, or a click of a direction button, where the direction button may be a directional button for turning pages up, down, left, or right, depending on the default area.

[0257] The process of switching the screen to display the new first interface can be seen in the above Figures 3a to 3c The interface shown.

[0258] In one embodiment of the present application, when the second interface is displayed, in response to receiving a fourth operation performed on the second interface, a new second interface may be displayed by sliding. This allows the user to browse the icons and names of the function items row by row, and thus accurately locate the function item they need.

[0259] In one embodiment of the present application, when the second interface is displayed, if you leave the scene corresponding to the second interface and then return to the above scene, the first interface will be displayed.

[0260] Specifically, when the second interface is displayed, if the fifth operation is received, the program returns to the upper interface in response to the fifth operation. After returning to the upper interface, if the sixth operation is received, the program displays the first interface in response to the sixth operation.

[0261] This allows the name of the function item to be temporarily displayed when the user has difficulty finding the function item, without causing a long-term mode switch for the entire scene due to a temporary mode switch during a search process. While making it convenient for users to find the required function items, it also reduces the trouble of device settings for users.

[0262] The above-mentioned scene is related to the icon displayed in the second interface. If the above-mentioned icon is the icon of the function item included in the control center, the scene corresponding to the second interface is the control center. If the above-mentioned icon is the icon of the function item included in the application list, the scene corresponding to the second interface is the application list.

[0263] The display solution provided in the embodiments of the present application can be applied to wearable devices. The hardware structure and software structure of the wearable device are described below.

[0264] For example, Figure 9FIG2 shows a schematic diagram of the structure of a wearable device 900. The wearable device 900 may include a processor 910, a display screen 920, an internal memory 930, a wireless charging module 940, a battery management module 941, a battery 942, a sensor module 950, a wireless communication module 960, and an antenna. The sensor module 950 may include a pressure sensor 950A, a touch sensor 950B, and the like.

[0265] It is understood that the structure illustrated in the embodiments of the present application does not constitute a specific limitation on the wearable device 900. In other embodiments of the present application, the wearable device 900 may include more or fewer components than shown, or may combine or separate certain components, or arrange the components differently. The illustrated components may be implemented in hardware, software, or a combination of software and hardware.

[0266] The processor 910 may include one or more processing units. For example, the processor 910 may include a central processing unit (CPU), an application processor (AP), a graphics processing unit (GPU), a controller, etc. The different processing units may be independent components or integrated into one or more processors. In some embodiments, the wearable device 900 may also include one or more processors 910. The controller may generate operation control signals based on instruction opcodes and timing signals to control instruction fetching and execution. In other embodiments, the processor 910 may also include a memory for storing instructions and data. For example, the memory in the processor 910 may be a high-speed cache memory. This memory may store instructions or data that have just been used or are being recycled by the processor 910. If the processor 910 needs to use the instruction or data again, it can directly call it from the memory. This avoids repeated accesses, reduces the processor 910's waiting time, and thus improves the efficiency of the wearable device 900 in processing data or executing instructions.

[0267] The wireless communication function of the wearable device 900 can be implemented through an antenna, a wireless communication module 960, etc. The antenna is used to transmit and receive electromagnetic wave signals.

[0268] Wearable device 900 implements display functionality through a GPU, display 920, and an application processor. The GPU is a microprocessor for image processing that connects display 920 and the application processor. The GPU is used to perform mathematical and geometric calculations for graphics rendering. Processor 910 may include one or more GPUs that execute program instructions to generate or modify display information.

[0269] The display screen 920 is used to display images, videos, etc. The display screen 120 includes a display panel. The display panel can be a liquid crystal display (LCD), an organic light-emitting diode (OLED), an active-matrix organic light-emitting diode or an active-matrix organic light-emitting diode (AMOLED), a flexible light-emitting diode (FLED), a mini-LED, a micro-LED, a micro-o-LED, a quantum dot light-emitting diode (QLED), etc. In some embodiments, the wearable device 900 may include one or more display screens 920.

[0270] In some embodiments of the present application, when the display panel adopts materials such as OLED, AMOLED, FLED, etc., the above Figure 9 The display screen 920 in the embodiment can be bent. Here, the display screen 920 being bendable means that the display screen can be bent to any angle at any position and can be maintained at that angle. For example, the display screen 920 can be folded in half from the middle to the left or right. It can also be folded in half from the middle to the top or bottom.

[0271] The wireless charging module 940 is used to sense the electromagnetic waves sent by the wireless charging device and convert the sensed electromagnetic waves into electrical energy to charge the wearable device 900.

[0272] The internal memory 930 can be used to store one or more computer programs, each of which includes instructions. The processor 910 can execute the above instructions stored in the internal memory 930, thereby enabling the wearable device 900 to perform the display method provided in some embodiments of the present application, as well as various applications and data processing. The internal memory 930 may include a program storage area and a data storage area. The program storage area may store an operating system; the program storage area may also store one or more applications (such as a gallery, contacts, etc.). The data storage area may store data created during the use of the wearable device 900 (such as photos, contacts, etc.). In addition, the internal memory 930 may include a high-speed random access memory and may also include a non-volatile memory, such as one or more disk storage components, a flash memory component, a universal flash storage (UFS), etc. In some embodiments, the processor 910 can execute the instructions stored in the internal memory 930 and / or the instructions stored in the memory provided in the processor 910, thereby enabling the wearable device 900 to execute the display method provided in the embodiments of the present application, as well as other applications and data processing.

[0273] The internal memory 930 can be used to store the relevant programs of the display method provided in the embodiment of the present application, and the processor 910 can be used to call the relevant programs of the display method stored in the internal memory 930 when displaying information to execute the display method of the embodiment of the present application.

[0274] The sensor module 950 may include a pressure sensor 950A, a touch sensor 950B, and the like.

[0275] Pressure sensor 950A is used to sense pressure signals and convert them into electrical signals. In some embodiments, pressure sensor 950A can be located on display screen 920. There are many types of pressure sensors, including resistive, inductive, and capacitive. A capacitive pressure sensor can include at least two parallel plates made of conductive material. When force is applied to pressure sensor 950A, the capacitance between the electrodes changes, and wearable device 900 determines the intensity of the pressure based on the change in capacitance. When a touch operation is applied to display screen 920, wearable device 900 detects the touch operation based on pressure sensor 950A. Wearable device 900 can also calculate the touch location based on the detection signal from pressure sensor 950A. In some embodiments, touch operations applied to the same touch location but with different touch operation intensities can correspond to different operation instructions. For example, when a touch operation with an intensity less than a first pressure threshold is applied to a short message application icon, an instruction to view short messages is executed; when a touch operation with an intensity greater than or equal to the first pressure threshold is applied to a short message application icon, an instruction to create a new short message is executed.

[0276] Touch sensor 950B, also known as a touch-sensitive device. Touch sensor 950B can be provided on display screen 920. Touch sensor 950B and display screen 920 form a touch screen, also known as a touch screen. Touch sensor 950B is used to detect touch operations acting on or near it. Touch sensor 950B can transmit the detected touch operation to the application processor to determine the type of touch event. Visual output related to the touch operation can be provided through display screen 920. In other embodiments, touch sensor 950B can also be provided on the surface of wearable device 900 and be provided at a different location from display screen 920.

[0277] Figure 10 The following is a software structure diagram of a wearable device applicable to embodiments of the present application. The software system of the wearable device can adopt a layered architecture, event-driven architecture, microkernel architecture, microservice architecture, or cloud architecture. The layered architecture divides the software system of the wearable device into several layers, each with a clear role and division of labor, and the layers communicate with each other through software interfaces. In some embodiments, the software system can be divided into five layers, from top to bottom: application layer, application framework layer, system operation layer, and kernel layer.

[0278] The application layer can also be called the application layer, which can include a series of application packages. Figure 10 As shown, the application package may include applications such as music, calendar, etc. Applications may include system applications and third-party applications.

[0279] The application framework layer provides application programming interfaces and programming frameworks for applications in the application layer. The application framework layer includes some predefined functions.

[0280] like Figure 10 As shown, the application framework layer may include a window manager, a content provider, a view system, a resource manager, a notification manager, and the like.

[0281] The window manager is used to manage window programs. The window manager can obtain the display size, determine whether there is a status bar, lock the screen, take screenshots, etc.

[0282] Content providers are used to store and retrieve data and make it accessible to applications. The data may include video, images, audio, etc.

[0283] The view system includes visual controls, such as those that display text and images. The view system is used to build applications. A display interface can consist of one or more views. For example, it might include a view that displays text and another that displays images.

[0284] In one embodiment of the present application, the view system may include a control for displaying an icon of a function item, a control for displaying a name of a function item, etc., to control the display of icons and names of function items.

[0285] The resource manager provides various resources for applications, such as localized strings, icons, images, layout files, video files, and so on.

[0286] The Notification Manager allows applications to display notifications in the status bar. These messages can be used to convey informational messages and can disappear automatically after a short pause, without requiring user interaction. For example, notifications are used to announce the completion of downloads, message reminders, and so on. Notifications can also appear in the system's top status bar as icons or scrolling text, such as notifications from background applications, or as dialog windows that appear on the screen. Notifications can be displayed as text messages in the status bar, beeping sounds, vibrating wearable devices, or flashing indicator lights.

[0287] The system operation layer may include multiple functional modules, such as a surface manager, a media library, a three-dimensional (3D) graphics processing library, and a two-dimensional (2D) graphics engine.

[0288] The surface manager is used to manage the display subsystem and provide fusion of 2D and 3D layers for multiple applications.

[0289] The media library supports playback and recording of a variety of common audio and video formats, as well as still image files. The media library supports a variety of audio and video encoding formats, such as MPEG4, H.264 (a new-generation digital video compression format), Moving Picture Experts Group Audio Layer III (MP3), Advanced Audio Coding (AAC), Adaptive Multi-Rate (AMR), Joint Photographic Experts Group (JPG), and Portable Network Graphics (PNG).

[0290] The 3D graphics processing library is used to implement three-dimensional graphics drawing, image rendering, compositing, and layer processing.

[0291] A 2D graphics engine is a drawing engine for 2D drawings.

[0292] The kernel layer is the layer between hardware and software. The kernel layer may include display drivers, audio drivers, CPU drivers, etc. Hardware may include CPU, NPU, memory, input and output interfaces (I / O), etc.

[0293] It is understandable that Figure 10 The layers in the illustrated software structure and the components included in each layer do not constitute a specific limitation on the wearable device 900 .

[0294] It is understandable that, in order to implement the display method provided in the embodiment of the present application, the wearable device includes hardware and / or software modules that perform the corresponding functions. In combination with the algorithm steps of each example described in the embodiments disclosed herein, the present application can be implemented in the form of hardware or a combination of hardware and computer software. Whether a function is executed in the form of hardware or computer software driving hardware depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application in combination with the embodiments, but such implementation should not be considered to be beyond the scope of this application.

[0295] Corresponding to the aforementioned display method, an embodiment of the present application further provides a wearable device and a computer-readable storage medium, as follows.

[0296] In one embodiment of the present application, a wearable device is provided, comprising:

[0297] one or more processors and memory;

[0298] The memory is coupled to the one or more processors, and the memory is used to store computer program code, where the computer program code includes computer instructions. The one or more processors call the computer instructions to enable the wearable device to execute the display method described in the aforementioned embodiment.

[0299] In one embodiment of the present application, a computer-readable storage medium is provided, comprising a computer program. When the computer program is executed on a wearable device, the wearable device executes the display method as described in the aforementioned embodiment.

[0300] In some cases, the machine-readable medium may include any mechanism for storing or transmitting information in a form readable by a machine (e.g., a computer), including but not limited to floppy disks, optical disks, optical discs, compact disc read-only memories (CD-ROMs), magneto-optical disks, read-only memories, random access memories, erasable programmable read-only memories (EPROMs), electrically erasable programmable read-only memories (EEPROMs), magnetic or optical cards, flash memory, or tangible machine-readable storage for transmitting information via the Internet using electrical, optical, acoustic, or other forms of propagated signals (e.g., carrier waves, infrared signals, digital signals, etc.). Therefore, the machine-readable medium includes any type of machine-readable medium suitable for storing or transmitting electronic instructions or information in a form readable by a machine (e.g., a computer).

[0301] In the accompanying drawings, some structural or method features may be shown in a particular arrangement and / or order. However, it should be understood that such a particular arrangement and / or order may not be required. Rather, in some embodiments, these features may be arranged in a manner and / or order different from that shown in the accompanying drawings. In addition, the inclusion of a structural or method feature in a particular figure does not imply that such a feature is required in all embodiments, and in some embodiments, such features may not be included or may be combined with other features.

[0302] Although the present application has been shown and described with reference to certain preferred embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the application.

Claims

1. A display method, characterized in that: Applied to a wearable device having a touch-operable display screen, the method includes: Displaying a first interface, wherein the first interface includes: icons of function items in the wearable device; When an icon located at an edge of the icon interface is displayed in the first interface, receiving a first operation acting on the first interface; In response to the duration of the first operation reaching a first duration, a second interface is displayed, wherein the second interface includes: an icon of the function item in the first interface and the name of the function item.

2. The method according to claim 1, characterized in that The method further comprises: In response to receiving the first operation, the first interface moves along a moving direction indicated by the first operation, and an area of the display screen other than the first interface forms an exit area; and After the first operation is completed, the first interface moves in a direction opposite to the moving direction indicated by the first operation, and the first interface covers the moved-out area.

3. The method according to claim 2, characterized in that Before displaying the second interface, the method further includes: In response to the duration reaching a first duration, prompt information is displayed in the removal area.

4. The method according to claim 3, characterized in that The displaying of prompt information in the removal area includes: The prompt information is gradually displayed in the moving-out area along the moving direction of the first operation instruction and with a first preset step length.

5. The method according to claim 3, characterized in that The method further comprises: After the first operation is completed or the prompt information is displayed for a second time period, the prompt information is hidden.

6. The method according to claim 5, characterized in that The hiding of the prompt information includes: The prompt information is gradually hidden along a direction opposite to the moving direction of the first operation instruction at a second preset step length.

7. The method according to any one of claims 1 to 6, characterized in that The second interface includes all or part of the icons included in the first interface.

8. The method according to claim 7, characterized in that The icons included in the second interface are determined according to the following method: Determining a first number of icon units displayed on the second interface according to a size of the display screen; Along the moving direction of the first operation instruction, icons included in a first number of icon units are determined from the icons included in the first interface as icons included in the second interface.

9. The method according to any one of claims 1 to 6, characterized in that In the second interface, the name of the function item is located below the icon of the function item.

10. The method according to any one of claims 1 to 6, characterized in that When the second interface is displayed, the name of the function item is displayed in a faded manner.

11. The method according to any one of claims 1 to 6, characterized in that The method further comprises: When the first interface is displayed, in response to receiving a third operation acting on the first interface, the screen is switched to display a new first interface.

12. The method according to claim 11, characterized in that The method further comprises: When the second interface is displayed, in response to receiving a fourth operation acting on the second interface, a new second interface is displayed by sliding.

13. The method according to any one of claims 1 to 6, characterized in that The icons located at the edge of the icon interface include: icons of the top row of function items in the icon interface of the control center, or icons of the top row of function items in the icon interface of the view list.

14. The method according to any one of claims 1 to 6, characterized in that The receiving, when an icon located at an edge of an icon interface is displayed on the first interface, a first operation applied to the first interface includes: When the first interface has traversed and displayed icons of all function items in the icon interface and icons located at an edge of the icon interface are displayed, a first operation acting on the first interface is received.

15. The method according to any one of claims 1 to 6, characterized in that The displaying of the second interface includes: In response to determining that the first operation is completed, the second interface is displayed.

16. The method according to any one of claims 1 to 6, characterized in that The method further comprises: When the second interface is displayed, if you leave the scene corresponding to the second interface and then return to the scene, the first interface will be displayed.

17. A wearable device, characterized in that: include: one or more processors and memory; The memory is coupled to the one or more processors, and the memory is used to store computer program code, where the computer program code includes computer instructions. The one or more processors call the computer instructions to enable the wearable device to perform the method according to any one of claims 1 to 16.

18. A computer-readable storage medium, characterized in that The invention comprises a computer program, which, when running on a wearable device, causes the wearable device to perform the method according to any one of claims 1 to 16.