Electronic device with two displays
Patent Information
- Application Number
- TW114121202
- Authority / Receiving Office
- TW · TW
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2024-09-19
- Filing Date
- 2025-06-06
- Publication Date
- 2026-08-11
- Estimated Expiration
- 2045-06-05
AI Technical Summary
Users experience lag and require excessive force to move dual screens on handheld game consoles and gaming phones, affecting the user experience.
An electronic device with a first body, a carrier, and a second body, utilizing an elastic telescopic module and triangular grooves to facilitate smooth sliding of the second screen relative to the first screen, reducing the force required for screen movement.
The design allows for effortless and ergonomic screen movement, reducing user fatigue and improving the overall user experience by minimizing resistance and jamming during sliding.
Smart Images

Figure TWG2TB001905765_001 
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an electronic device, and more particularly to an electronic device having dual screens. [Previous Technology]
[0002] With the development of the gaming industry and the increasing demands of users for games, dual-screen handheld game consoles, gaming phones, and other related products are gradually becoming popular in the consumer market. Furthermore, to reduce the overall size, the aforementioned dual screens are usually designed as overlapping screens. When a user needs to use the other screen, they can simply push the top screen upwards to expose the other screen for use.
[0003] However, users often experience a lag when pushing the top screen of some products. Furthermore, users need to push the top screen all the way down to fully expose the other screen. Improving the user experience when using handheld game consoles and gaming phones has become one of the problems that researchers in this field wish to solve. [Summary of the Invention]
[0004] The present invention provides an electronic device that allows users to easily move the screen, thereby providing users with a good user experience.
[0005] The electronic device of the present invention includes a first body, a carrier, an elastic telescopic module, and a second body. The first body includes a first screen. The carrier is slidably disposed on the first body along a sliding direction. The carrier has a triangular groove and a main slide rail. The main slide rail extends along the sliding direction. The elastic telescopic module is movably disposed in the carrier. The elastic telescopic module has a fixed end and a movable end. The fixed end is locked in the triangular groove, and the movable end passes through the main slide rail and is locked to the first body. The second body is disposed on the carrier, and the second body includes a second screen. The elastic telescopic module is adapted to move the second body and the carrier relative to the first body between a covered position and an open position by means of elastic force, so that the second screen covers or exposes the first screen.
[0006] In one embodiment of the present invention, the above-mentioned triangular groove has an edge, a first vertex, a second vertex and a third vertex. The edge extends along the sliding direction and is disposed adjacent to the main slide rail. The first vertex and the second vertex are located at opposite ends of the edge. The third vertex is away from the edge and the main slide rail. The fixed end is locked to the third vertex.
[0007] In one embodiment of the present invention, the main slide rail is located in a triangular groove, and the moving end is adapted to move between the first vertex and the second vertex.
[0008] In one embodiment of the present invention, the above-mentioned electronic device further includes a plurality of sliders, the carrier having a plurality of secondary slide rails extending along the sliding direction, the plurality of sliders being locked to the first body and located within the plurality of secondary slide rails.
[0009] In one embodiment of the present invention, the first body further includes a fixing member, a first frame and a main body. The first frame is disposed on the main body, the fixing member and the first screen are disposed on the first frame, and a plurality of sliders are locked to the fixing member.
[0010] In one embodiment of the present invention, the above-mentioned elastic telescopic module includes a telescopic rod, an elastic element and two fixed rods. The elastic element is sleeved on the telescopic rod, and the two ends of the telescopic rod are respectively connected to the two fixed rods. The two fixed rods are respectively located at the fixed end and the moving end and are respectively locked to the third apex and the first body.
[0011] In one embodiment of the present invention, the second body further includes a second frame disposed on the carrier, and the second screen is disposed on the second frame.
[0012] In one embodiment of the present invention, the angles of the first vertex and the second vertex are both less than 90 degrees.
[0013] In one embodiment of the present invention, in the sliding direction, the second vertex is located between the third vertex and the first vertex, the angle of the first vertex is less than 90 degrees, and the angle of the second vertex is equal to or greater than 90 degrees.
[0014] In one embodiment of the present invention, in the sliding direction, the first vertex is located between the third vertex and the second vertex, the angle of the first vertex is equal to or greater than 90 degrees, and the angle of the second vertex is less than 90 degrees.
[0015] In one embodiment of the present invention, the length of the second screen in the sliding direction is greater than the length of the first screen in the sliding direction.
[0016] In one embodiment of the present invention, the above-mentioned electronic device further includes a camera module and two light-emitting modules. The camera module is disposed on the second body, and the two light-emitting modules are disposed on the first body. The two light-emitting modules are respectively located on opposite sides of the second body. The camera module is used to capture images, and the two light-emitting modules are used to display light signals.
[0017] A method for interacting with artificial intelligence according to the present invention includes: providing an electronic device as described above; receiving an instruction to enter an artificial intelligence conversation mode; receiving conversation input between a user and artificial intelligence; having the artificial intelligence identify content displayed on a second screen; and having the artificial intelligence respond based on the identified content.
[0018] Based on the above, in the electronic device of the present invention, a second body is disposed on a support member. The support member is slidably disposed on the first body along a sliding direction and has a triangular groove and a main slide rail. An elastic telescopic module is movably disposed in the support member, and the fixed end of the elastic telescopic module is locked in the triangular groove, while the movable end of the elastic telescopic module passes through the main slide rail and is locked to the first body. Through this design, the electronic device of the present invention can assist the user in sliding the second body and the support member relative to the first body to the covered position and the open position with less force, thereby improving the user experience.
Implementation Method
[0020] FIG1A is a schematic diagram of the appearance of the electronic device when the second body is in the covered position according to an embodiment of the present invention. FIG1B is an exploded view of the electronic device of FIG1A. FIG1C is a schematic diagram of the electronic device of FIG1A without the second body. Referring to FIG1A to FIG1C, the electronic device 100 of this embodiment is, for example, a handheld game console and includes a first body 110 and a carrier 120. The first body 110 includes a first screen 111, a fixing member 112, a first frame 113 and a main body 114. The first frame 113 is disposed on the main body 114, and the fixing member 112 and the first screen 111 are disposed on the first frame 113. The carrier 120 is slidably disposed on the fixing member 112 of the first body 110 along a sliding direction SD.
[0021] The first screen 111 may be a user interface for displaying an artificial intelligence consulting system, an artificial intelligence coach or an artificial intelligence assistant, or an interface for presenting game assistance information, but the present invention is not limited thereto.
[0022] Specifically, the electronic device 100 of this embodiment further includes a plurality of sliders 150, and the carrier 120 includes a plurality of secondary slide rails 123 extending along the sliding direction SD. The plurality of sliders 150 are locked onto the fixing member 112 of the first body 110 and located within the plurality of secondary slide rails 123. The carrier 120 is constrained by the plurality of secondary slide rails 123 and the plurality of sliders 150, so that the carrier 120 can slide stably relative to the first body 110 along the sliding direction SD.
[0023] The electronic device 100 further includes a second body 140 disposed on the carrier 120, and the second body 140 includes a second screen 141 and a second frame 142. The second screen 141 is disposed on the second frame 142, and the second frame 142 is disposed on the carrier 120. When the carrier 120 slides relative to the first body 110 in the sliding direction SD, the second screen 141 and the second frame 142 of the second body 140 also slide together with the carrier 120 in the sliding direction SD.
[0024] In this embodiment, the second screen 141 can slide up and down relative to the first screen 111 along the sliding direction SD. With this design, the angle at which the user uses the electronic device 100 is more ergonomic. In other words, the user can use the electronic device 100 without bending their shoulders and neck, thus relieving shoulder and neck pressure and alleviating discomfort from prolonged use of the electronic device 100.
[0025] Figure 1F is a side view of the electronic device of Figure 1A. As shown in Figure 1F, the length L2 of the second screen 141 in the sliding direction SD is greater than the length L1 of the first screen 111 in the sliding direction. Furthermore, when the second body 140 is in the covering position relative to the first body 110, the second screen 141 and the second frame 142 can completely cover the first screen 111. At this time, the second screen 141 can display an image, while the first screen 111 does not display an image.
[0026] The following describes the structure of the second body 140 of the electronic device 100 in this embodiment, which can be automatically positioned by a light push.
[0027] Figure 1D is an enlarged schematic diagram of the electronic device in Figure 1C. It should be noted that Figure 1D mainly shows the triangular groove 121, the main slide rail 122 and the elastic telescopic module 130 on the left side of Figure 1C, while the two triangular grooves 121, the two main slide rails 122 and the two elastic telescopic modules 130 shown in Figure 1C are mirror-symmetrical to each other along the center line CL of the support member 120.
[0028] Please refer to Figures 1C and 1D. The carrier 120 of this embodiment has two triangular grooves 121 and two corresponding main slide rails 122. For simplicity, the following description only uses the triangular grooves 121 and main slide rails 122 shown in Figure 1D. The triangular groove 121 has a first edge E1, a second edge E2, a third edge E3, a first vertex V1, a second vertex V2, and a third vertex V3. The angles A1 of the first vertex V1, A2 of the second vertex V2, and A3 of the third vertex V3 are all less than 90 degrees. The first vertex V1 and the second vertex V2 are located at opposite ends of the first edge E1, the second vertex V2 and the third vertex V3 are located at opposite ends of the second edge E2, and the third vertex V3 and the first vertex V1 are located at opposite ends of the third edge E3. In other words, the third vertex V3 is away from the first edge E1. The main slide rail 122 is located within the triangular groove 121 and is positioned adjacent to the first edge E1, and the first edge E1 and the main slide rail 122 extend along the sliding direction SD. In other words, the third vertex V3 is also away from the main slide rail 122.
[0029] Furthermore, the electronic device 100 of this embodiment also includes two elastic telescopic modules 130 movably disposed in the triangular groove 121. The two elastic telescopic modules 130 are respectively disposed in the corresponding triangular groove 121. Similarly, the following description will only refer to the triangular groove 121, the main slide rail 122 and the elastic telescopic module 130 of FIG1D.
[0030] A fixed end S1 of the elastic telescopic module 130 is locked to the third vertex V3 of the triangular groove 121, and a movable end S2 of the elastic telescopic module 130 is located in the main slide rail 122 and passes through the main slide rail 122 and is locked to the fixing member 112 of the first body 110. The movable end S2 is adapted to move between the first vertex V1 and the second vertex V2.
[0031] Figure 1E is a schematic diagram of the appearance of the elastic telescopic module of Figure 1C. Referring to Figures 1D and 1E, specifically, the elastic telescopic module 130 includes a telescopic rod 131, an elastic element 132, and two fixed rods 133. The elastic element 132 is sleeved on the telescopic rod 131 and is adapted to be compressed or stretched by the telescopic rod 131. The two ends of the telescopic rod 131 are respectively connected to the two fixed rods 133. The two fixed rods 133 are located at the fixed end S1 and the moving end S2, respectively, and are locked to the third vertex V3 of the triangular groove 121 and the fixing element 112 of the first body 110. The telescopic rod 131 may be, for example, a hydraulic rod, and the elastic element 132 may be, for example, a spring, but the present invention is not limited thereto.
[0032] As shown in Figures 1C and 1D, when the second body 140 is in the covered position relative to the first body 110, the moving end S2 is located near the first vertex V1 of the main slide rail 122, and the elastic telescopic module 130 is located near the third edge E3 of the triangular groove 121. At this time, the elastic element 132 has a length D1.
[0033] Figure 2A is a schematic diagram of the second body of Figure 1A moving to the transition position. Figure 2B is an enlarged schematic diagram of the electronic device of Figure 2A. Referring to Figures 2A and 2B, when the second body 140 slides relative to the first body 110 along the sliding direction SD to the transition position (i.e., in the state shown in Figures 2A and 2B), the second body 140 drives the support member 120 to slide along the sliding direction SD, thereby causing the fixed end S1 and the moving end S2 of the elastic telescopic module 130 to move relative to each other. Specifically, the moving end S2 is away from the first vertex V1, and the elastic telescopic module 130 is away from the third edge E3. At this time, the elastic member 132 has the shortest length D2 and stores the most elastic force.
[0034] Figure 3A is an external schematic diagram of the second body of Figure 1A moved to the open position. Figure 3B is an enlarged schematic diagram of the electronic device of Figure 3A. Figure 3C is a side view of the electronic device of Figure 3A. Referring to Figures 3A to 3C, when the second body 140 continues to slide relative to the first body 110 along the sliding direction SD (i.e., in the state shown in Figures 3A to 3C), the elastic element 132 can release its stored elastic force, so that the telescopic rod 131 is pushed open towards the fixed end S1 and the moving end S2, and further provides the second body 140 with force relative to the first body 110 along the sliding direction SD, so that the bearing member 120 and the second body 140 can automatically slide along the sliding direction SD to the open position. When the second body 140 is in the open position relative to the first body 110, the moving end S2 is located near the second vertex V2 of the main slide rail 122, and the elastic telescopic module 130 is located near the second edge E2 of the triangular groove 121. At this point, the elastic element 132 has the longest length D3.
[0035] In other words, when the user needs to slide the second body 140 relative to the first body 110 from the covered position (as shown in Figures 1A to 1F) to the open position (as shown in Figures 3A to 3C), the user only needs to exert force to push the second body 140 to the transition position (as shown in Figures 2A to 2B). The elastic member 132 can then use the stored elastic force to move the second body 140 and the support member 120 relative to the first body 110 from the transition position to the open position, so that the second body 140 and the support member 120 are fully exposed to the first screen 111 as shown in Figure 3C. This achieves the effect of automatically positioning the second body 140 with a light push, thus improving the user's experience when using the electronic device 100 of this embodiment.
[0036] Conversely, if the second body 140 is to be slid relative to the first body 110 from the open position (as shown in Figures 3A to 3C) to the covered position (as shown in Figures 1A to 1F), the user only needs to exert force to push the second body 140 to the transition position (as shown in Figures 2A to 2B). The elastic member 132 can also use its stored elastic force to drive the second body 140 and the carrier member 120 relative to the first body 110 from the transition position to the covered position, thereby making the second body 140 and the carrier member 120 completely cover the first screen 111 as shown in Figure 1F. It also achieves the effect of automatically positioning the second body 140 with a light push, which saves effort.
[0037] Furthermore, the elastic telescopic module 130 of this embodiment uses a combination of a telescopic rod 131 and an elastic element 132. This design makes the entire electronic device 100 slide more smoothly, reducing the feeling of jamming, reducing wear on the structure during overall sliding, thus increasing its service life, and improving stability, thus reducing shaking or instability. The design of the elastic element 132, in addition to utilizing its elastic force to automatically slide the second body 140 and the support member 120 to achieve a labor-saving effect, also makes sliding smoother and more comfortable and reduces resistance during the sliding process. In other words, the design of the elastic telescopic module 130 of this embodiment can reduce user fatigue, making the user more comfortable and improving the user experience.
[0038] Furthermore, the first body 110 of this embodiment has multiple components such as a fixing member 112, a first frame 113, and a main body 114. This design helps to reduce assembly difficulty and facilitates component repair, replacement, and upgrades.
[0039] Through the above design, the electronic device 100 of this embodiment can use the design of the elastic telescopic module 130 combined with the triangular groove 121 of the carrier 120 to help the user slide the second body 140 and the carrier 120 relative to the first body 110 in the covered position and the open position with less force, thereby improving the user experience.
[0040] It should be added that, in other embodiments, the fastener 112 and the first frame 113 can be integrated into the same component, and the first frame 113 and the main body 114 can be integrated into the same component, so as to reduce the overall production cost and assembly cost and improve the strength of the parts.
[0041] Furthermore, in other embodiments, the carrier 120 may have only one triangular groove 121 and one main slide rail 122, and the triangular groove 121 may only correspond to one elastic telescopic module 130. The present invention is not limited thereto.
[0042] Other embodiments will be listed below for illustration. It should be noted that the following embodiments use the component reference numerals and some content of the foregoing embodiments, wherein the same reference numerals are used to represent the same or similar components, and the description of the same technical content is omitted. The different features of each embodiment can be applied to other embodiments in principle. For the description of the omitted parts, please refer to the foregoing embodiments, and the following embodiments will not repeat them.
[0043] Figure 4A is a schematic diagram of the appearance of the triangular groove and the elastic telescopic module according to another embodiment of the present invention. Figures 4B and 4C are schematic diagrams of the appearance of the elastic telescopic module of Figure 4A moving along the sliding direction. It should be noted that Figures 4A to 4C are similar to Figure 1D, only showing one triangular groove 121a, one main slide rail 122, one latch 170a and one elastic telescopic module 130, etc. In reality, it can have two triangular grooves 121a, two main slide rails 122, two latches 170a and two elastic telescopic modules 130 as shown in Figures 1A to 1C. In addition, please refer to the embodiments described in Figures 1A to 3C for the structural arrangement relationship of other components.
[0044] Please refer to Figures 4A to 4C. The difference between this embodiment and the previous embodiment lies in the shape of the triangular groove 121a. Specifically, the triangular groove 121a also has a first edge E1', a second edge E2', a third edge E3', a first vertex V1', a second vertex V2', and a third vertex V3'. The first edge E1' extends along the sliding direction SD, just like the main slide rail 122. In the sliding direction SD, the second vertex V2' is located between the third vertex V3' and the first vertex V1'. The angles A1' of the first vertex V1' and A3' of the third vertex V3' are both less than 90 degrees, and the angle A2' of the second vertex V2' is equal to or greater than 90 degrees.
[0045] The elastic element 132 of the elastic telescopic module 130 is in its most compressed state in Figure 4A, storing elastic force. The elastic telescopic module 130 is stopped by the latch 170a and maintained in a position near the second edge E2'. When the user pushes the second body 140 to slide relative to the first body 110 in the opposite direction of the sliding direction SD (i.e., downward in the figure), so that the moving end S2 of the elastic telescopic module 130 passes through the latch 170a, since the angle A2' of the second vertex V2' of the triangular groove 121a is greater than or equal to 90 degrees, the elastic element 132 directly releases its elastic force, causing the elastic telescopic module 130 to move from a position near the second edge E2' (as shown in Figure 4A) to a position near the third edge E3' (as shown in Figures 4B and 4C), so that the second body 140 can move directly to the covering position.
[0046] In other words, the cooperation between the elastic telescopic module 130 and the triangular groove 121a in this embodiment allows the user to push the second body 140 into place automatically by simply exerting force to make the elastic telescopic module 130 pass through the latch 170a.
[0047] Figure 5A is a schematic diagram of the appearance of the triangular groove and the elastic telescopic module according to another embodiment of the present invention. Figures 5B and 5C are schematic diagrams of the appearance of the elastic telescopic module of Figure 5A moving along the sliding direction. It should be noted that Figures 5A to 5C are similar to Figure 1D, only showing one triangular groove 121b, one main slide rail 122, one latch 170b, and one elastic telescopic module 130, etc. In reality, it can have two triangular grooves 121b, two main slide rails 122, two latches 170b, and two elastic telescopic modules 130 as shown in Figures 1A to 1C. In addition, please refer to the embodiments described in Figures 1A to 3C for the structural arrangement relationship of other components.
[0048] Please refer to Figures 5A to 5C. The difference between this embodiment and the previous embodiment lies in the shape of the triangular groove 121b. Specifically, the triangular groove 121b also has a first edge E1'', a second edge E2'', a third edge E3'', a first vertex V1'', a second vertex V2'', and a third vertex V3''. The first edge E1'' extends along the sliding direction SD, just like the main slide rail 122. In the sliding direction SD, the first vertex V1'' is located between the third vertex V3'' and the second vertex V2''. The angle A1'' of the first vertex V1'' is equal to or greater than 90 degrees, and the angles A2'' of the second vertex V2'' and A3'' of the third vertex V3'' are both less than 90 degrees.
[0049] The elastic element 132 of the elastic telescopic module 130 is in its most compressed state in Figure 5A, storing elastic force. The elastic telescopic module 130 is stopped by the latch 170b and maintained in a position close to the third edge E3''. When the user pushes the second body 140 to slide relative to the first body 110 in the sliding direction SD (i.e., upward in the figure), after the moving end S2 of the elastic telescopic module 130 passes through the latch 170b, since the angle A1'' of the first vertex V1'' of the triangular groove 121b is greater than or equal to 90 degrees, the elastic element 132 directly releases its elastic force, causing the elastic telescopic module 130 to move from the position close to the third edge E3'' (as shown in Figure 5A) to the position close to the second edge E2'' (as shown in Figures 5B and 5C), thereby allowing the second body 140 to move directly to the open position.
[0050] In other words, the cooperation between the elastic telescopic module 130 and the triangular groove 121b in this embodiment allows the user to exert force only to push the second body 140 into place automatically by having the elastic telescopic module 130 pass through the latch 170b.
[0051] The following describes various embodiments of the electronic device 100 of the present invention, which integrates artificial intelligence (not shown) to allow users to interact with artificial intelligence in different situations. Generally speaking, the method for users to interact with artificial intelligence includes: providing the electronic device 100 as described above; the electronic device 100 receiving an instruction to enter an artificial intelligence conversation mode; the electronic device 100 receiving conversation input between the user and the artificial intelligence; the artificial intelligence recognizing content displayed on the second screen 141; and the artificial intelligence responding based on the recognized content. Details are described below.
[0052] The following describes how the user interacts with the artificial intelligence of the electronic device 100 regarding the game content displayed on the screen. Figure 6 is a flowchart of the interaction between the artificial intelligence of the electronic device and the user according to an embodiment of the present invention. Referring to both Figures 1F and 6, the electronic device 100 of this embodiment includes a control module 163 and a computing module 164 disposed on the first body 110, and the artificial intelligence is, for example, software built into the computing module 164, but the present invention does not limit the position of the control module 163 and the computing module 164. In addition, in this embodiment, the second body 140 is in a covered position relative to the first body 110.
[0053] When the second body 140 is in the covered position relative to the first body 110, the computing module 164 receives an instruction, such as a key instruction, a touch instruction, or a voice instruction, to enter the artificial intelligence conversation mode (step S601), and the control module 163 controls the second screen 141 to display the artificial intelligence conversation field (step S602).
[0054] Next, the user interacts with the artificial intelligence (step S603), and the artificial intelligence identifies the content displayed on the second screen 141 (step S604). For example, the second screen 141 displays a game scene, and the user asks the artificial intelligence whether there is a treasure chest in the scene displayed on the second screen 141. The artificial intelligence then converts the user's voice content into text content through automatic speech recognition, and identifies the intent (e.g., to find a treasure chest) and entities (e.g., whether there is a "treasure chest" "nearby" in the scene displayed on the second screen 141) based on the above-mentioned voice content, text content, intent, entities, etc. The artificial intelligence then judges the content based on object recognition and scene recognition, and identifies the objects displayed in the scene (e.g., identifying an object with a Buddha head displayed on the second screen 141) and the scene (e.g., identifying the scene displayed on the second screen 141 as Huangfengling) through object recognition and scene recognition. The computation module 164 searches the internet to obtain corresponding strategies (such as the location of the treasure chest in Huangfengling) based on intent, entities, objects, and scenes. Based on the corresponding strategies, the computation module 164 generates corresponding layer responses and corresponding text responses through a multimodal generation model.
[0055] Next, the artificial intelligence responds through the computing module 164 (step S605), and the computing module 164 controls the second screen 141 to display the corresponding layer response (for example, a box layer is displayed at the position of the Buddha head that may have a treasure chest on the second screen 141) and the corresponding text response (for example, an artificial intelligence dialogue bar is displayed on the second screen 141, which describes that there is a treasure chest behind the Buddha head).
[0056] Figure 7 is another flowchart of the interaction between artificial intelligence and user in an electronic device according to an embodiment of the present invention. Referring to Figure 7, the difference between this embodiment and the embodiment in Figure 6 is that this embodiment only includes the steps of the computing module 164 receiving an instruction to enter the artificial intelligence conversation mode (step S701), the user conversing with the artificial intelligence (step S702), the artificial intelligence recognizing the content displayed on the second screen 141 (step S703), and the artificial intelligence responding through the computing module 164 (step S704), without displaying the artificial intelligence conversation field, and instead using artificial intelligence to play voice responses.
[0057] Specifically, as described in the foregoing embodiments, the computing module 164 searches the internet to obtain a corresponding strategy guide (e.g., the location of the treasure chest in Huangfengling) based on the intent, entity, object, and scene. Then, the computing module 164 in this embodiment generates a corresponding layer response and a corresponding voice response using a multimodal generation model based on the corresponding strategy guide. The computing module 164 controls the second screen 141 to display the corresponding layer response (e.g., a box layer showing the location of a Buddha head that may contain a treasure chest is displayed on the second screen 141) and the corresponding voice response (e.g., playing the sound "There is a treasure chest behind the Buddha head").
[0058] Figure 8 is another flowchart illustrating the interaction between artificial intelligence and a user in an electronic device according to an embodiment of the present invention. In this embodiment, the second body 140 is in the open position relative to the first body 110 (as shown in Figures 3A to 3C above). This embodiment includes the following steps: the computing module 164 receives an instruction to enter the artificial intelligence conversation mode (step S801); the first screen 111 displays the artificial intelligence conversation field (step S802); the user engages in conversation with the artificial intelligence (step S803); the artificial intelligence identifies the content displayed on the second screen 141 (step S804); and the artificial intelligence responds through the computing module 164 (step S805). The difference between this embodiment and the embodiment in Figure 6 is that in this embodiment, both the first screen 111 and the second screen 141 are in a state where images can be displayed, and the control module 163 controls the first screen 111 to display the artificial intelligence conversation field.
[0059] Specifically, in this embodiment, the AI chat interface with text responses is displayed on the first screen 111, while the AI chat interface is not displayed on the second screen 141. In other embodiments, the first screen 111 and the second screen 141 may display the AI chat interface simultaneously, and the present invention is not limited thereto.
[0060] In another embodiment, in addition to the first screen 111 displaying an AI chat bar with text response and the second screen 141 displaying the corresponding layer response, the corresponding voice response can also be played at the same time through a playback module (not shown, such as a speaker) (e.g., playing the sound of "There is a treasure chest behind the Buddha head").
[0061] The following describes how the user and the electronic device 100 use artificial intelligence to adjust the light-emitting modules for the screen display content. Figure 9 is a flowchart of the interaction between the light-emitting modules of the electronic device and the user according to an embodiment of the present invention. Referring to Figures 1A to 1C and Figure 9, the electronic device 100 of this embodiment includes, in addition to the control module 163 and the calculation module 164, two light-emitting modules 162 and a radio module 165 disposed on the first body 110. The two light-emitting modules 162 are respectively located on opposite sides of the second body 140, and the two light-emitting modules 162 are used to display light signals. The present invention does not limit the position or number of the two light-emitting modules 162 and the radio module 165.
[0062] First, the computing module 164 executes in the background (step S901), and identifies the display type of the second screen 141 through artificial intelligence (step S902). For example, the displayed content may be ocean, grassland, etc., and the type of displayed content may be video, game, or live broadcast, etc.
[0063] Upon successful identification (step S903), the computing module 164 instructs the light-emitting module 162 to cooperate (step S904) and controls the switching of the light-emitting module 162's light signal through the artificial intelligence and control module 163 (step S905). For example, if the identified content is a video, the computing module 164 can access information such as the video's playback progress, volume, and speed, and control the two light-emitting modules 162 to display corresponding light signals based on this information (for example, the left light-emitting module 162 can display different playback progresses with multiple light levels, and the right light-emitting module 162 can display different playback speeds with multiple light levels). If the identified content is a game, the processing module 164 can store information such as the game's progress, character health and energy, and the number and health of enemies, and control the two light-emitting modules 162 to display corresponding lights based on this information (for example, the left light-emitting module 162 can display the game progress with multiple light levels, and the right light-emitting module 162 can display the enemy health with multiple light levels). If the identified content is a live stream, the processing module 164 can store information such as the live stream's donation progress and comment speed, and control the two light-emitting modules 162 to display corresponding lights based on this information (for example, the left and right light-emitting modules 162 can display the donation progress with multiple light levels).
[0064] In addition, the audio receiving module 165 can receive voice content, and the computing module 164 converts the voice content into text content through automatic speech recognition. The computing module 164 uses natural language understanding to identify the intent and entity based on the text content, and executes the corresponding instruction according to the intent and entity. For example, the user can say "Please display the playback volume". After the audio receiving module 165 receives the voice content, the computing module 164 retrieves the video playback volume according to the voice content, and the artificial intelligence and control module 163 controls the light-emitting module 162 to display the corresponding light level according to the playback volume.
[0065] When the second screen 141 no longer displays this type of content, the artificial intelligence and control module 163 controls the light-emitting module 162 to switch to a regular light signal (step S907). In addition, when the artificial intelligence cannot identify the display type of the second screen 141 (step S906), the light-emitting module 162 also switches to a regular light signal (step S907).
[0066] Corresponding to the embodiments in Figures 6 to 8, step S904 of this embodiment (the computing module 164 instructs the light-emitting module 162 to cooperate, for example, the aforementioned user can say "Please display the playback volume" and the audio module 165 receives the voice content) corresponds to the aforementioned steps S603, S702 and S803, and can be regarded as a step of conducting artificial intelligence conversation. In addition, step S905 of this embodiment (controlling the switching of the light-emitting module 162's light signal through the artificial intelligence and control module 163, for example, the aforementioned computing module 164 accesses the video playback volume according to the voice content, and the artificial intelligence and control module 163 controls the light-emitting module 162 to display the corresponding light level according to the playback volume) corresponds to the aforementioned steps S605, S704 and S805, and can be regarded as a step of artificial intelligence response.
[0067] Figure 10 is another flowchart illustrating the interaction between the light-emitting module of an electronic device according to an embodiment of the present invention and the user. This embodiment is similar to the previous embodiment. This embodiment includes the following steps: the computing module 164 executes in the background (step S1001), identifies the display type of the second screen 141 through artificial intelligence (step S1002), successfully identifies the display type (step S1003), instructs the light-emitting module 162 to cooperate (step S1004), switches the light number of the light-emitting module 162 through artificial intelligence (step S1005), and displays the normal light number (step S1006). The difference between the two is that even if the user uses ambiguous language commands, they can accurately control the two light-emitting modules 162.
[0068] Specifically, the radio module 165 in this embodiment can receive voice content (for example, the user can say "Please display the playback speed and playback volume" for the radio module 165 to receive), the computing module 164 converts the voice content into text content through automatic speech recognition, the computing module 164 identifies the intent and entity based on the text content through natural language understanding, the computing module 164 identifies the user's language (for example, Chinese, English, Arabic or Hebrew) through language recognition, and the computing module 164 executes the corresponding instructions according to the system language or user language, intent and entity.
[0069] For example, the processing module 164 can access the video playback volume and control the two light-emitting modules 162 according to the playback volume and the user's language logic. For example, if the user speaks the display playback speed and volume in Chinese or English, the left light-emitting module 162 can represent the playback speed, and the right light-emitting module 162 can represent the playback volume (i.e., the content spoken first is placed on the left light-emitting module 162, and the content spoken later is placed on the right light-emitting module 162). If the user speaks the display playback speed and volume in Arabic or Hebrew, the left light-emitting module 162 can represent the playback volume, and the right light-emitting module 162 can represent the playback speed (i.e., the content spoken first is placed on the right light-emitting module 162, and the content spoken later is placed on the left light-emitting module 162).
[0070] In other words, with the assistance of system language or user language, even if the user uses vague language commands (for example, without specifying what content the left and right light-emitting modules 162 should display respectively), the user can still accurately control the two light-emitting modules 162.
[0071] Furthermore, as described above, step S1004 (instructing the light-emitting module 162 to cooperate) in this embodiment can also be regarded as a step of conducting artificial intelligence dialogue. Furthermore, step S1005 (switching the light-emitting module 162 light signal through artificial intelligence) in this embodiment can also be regarded as a step of artificial intelligence response.
[0072] It should be added that, in the embodiments of FIG9 and FIG10, the second body 140 may be in the open position relative to the first body 110, or the second body 140 may be in the covered position relative to the first body 110.
[0073] The following describes how the user and the artificial intelligence of the electronic device 100 adjust the content displayed on the first screen 111 in response to whether the second screen 141 is swiped and the content of the second screen 141. FIG11 is a flowchart of adjusting the content displayed on the first screen of an electronic device according to an embodiment of the present invention by combining artificial intelligence to identify the content of the second screen. Please refer to FIG1A to FIG1C and FIG11 at the same time. In addition to the computing module 164, the electronic device 100 of this embodiment also includes a sensing module 166 disposed on the first body 110, but the present invention does not limit its placement.
[0074] First, the computing module 164 and the sensing module 166 operate in the background (step S1101). When the user slides the second body 140 relative to the first body 110 to the open position, the computing module 164 and the sensing module 166 receive a swipe-up message from the second screen 141 (step S1102). Next, the computing module 164 identifies the display type of the second screen 141 (step S1103). If the displayed content is identified as a game (step S1104), then the game mode is entered (step S1105), and the first screen 111 displays game-related information accordingly. If the displayed content is identified as a live stream (step S1106), then the live stream mode is entered (step S1107), and the first screen 111 displays live stream-related information accordingly. If the displayed content is identified as another type (step S1108), then the default mode is entered (step S1109), and the first screen 111 displays, for example, a standby screen.
[0075] Next, the sensing module 166 will continue to detect whether the content displayed on the second screen 141 has changed (step S1110). If it has changed, the computing module 164 will again identify the display type of the second screen 141 (step S1103) to enter a different mode. When the user slides the second body 140 relative to the first body 110 to the covered position, the computing module 164 and the sensing module 166 receive the second screen 141 sliding down message (step S1111), and turn off the first screen 111, and return to step S1102, waiting for the user to slide the second body 140 relative to the first body 110 to the open position before proceeding with the above process.
[0076] The following describes how the electronic device 100 uses artificial intelligence combined with a camera module 161 to determine the content viewed by the user and adjust the content displayed on the first screen 111 accordingly. Figure 12 is a flowchart of the adjustment of the first screen display content by the camera module in accordance with an embodiment of the present invention. Please refer to Figures 1A and 12 simultaneously. In addition to the control module 163 and the computing module 164, the electronic device 100 of this embodiment also includes a camera module 161 disposed on the second screen 141 of the second body 140. The camera module 161 is used to capture images. The present invention does not limit the position of the camera module 161. Furthermore, in this embodiment, the second body 140 is in the open position relative to the first body 110.
[0077] First, the content displayed on the second screen 141 is identified using artificial intelligence (step S1201). The computing module 164 identifies the objects (e.g., horse status and map) and scenes (e.g., crow's nest) displayed on the second screen 141 through object recognition and scene recognition. The computing module 164 calculates the view rate of the relevant content from the cloud (step S1202). For example, the computing module 164 can calculate the view rate of the corresponding objects (e.g., the view rates of horse status and map are 30% and 50% respectively) and the view rate of the scene (e.g., the view rate of crow's nest is 70%).
[0078] Furthermore, the artificial intelligence and control module 163 controls the camera module 161 to acquire multiple captured images, and identifies the area of the second screen 141 viewed by the user through these captured images (step S1203) (e.g., the lower area, upper right area, main area, etc. of the second screen 141). The calculation module 164 calculates the user's viewing time ratio in each area per unit time (step S1204). For example, the calculation module 164 calculates the viewing time ratio of corresponding objects (e.g., the viewing time ratios of horse status and map are 10% and 20% respectively) and the viewing time ratio of corresponding scenes (e.g., the viewing time ratio of crow's nest is 70%) based on the unit time, the viewing areas of multiple players, objects, and scenes.
[0079] The calculation module 164 calculates the weight of the content by referring to the click rate and viewing time ratio (step S1205). For example, the calculation module 164 multiplies the click rate of the corresponding object by the viewing time of the corresponding object, and multiplies the click rate of the corresponding scene by the viewing time ratio of the corresponding scene to calculate the weight of the corresponding object (e.g., the weight of the horse status is 5%, and the weight of the map is 16%) and the weight of the corresponding scene (e.g., the weight of the crow's nest is 79%).
[0080] Next, the calculation module 164 loads relevant information based on the weight calculation results and displays it on the first screen 111 (step S1206), and reorganizes it after a unit of time (step S1207). For example, the calculation module 164 obtains the corresponding object information and the corresponding scene information of the previous few transactions based on the corresponding object information, the corresponding scene information, the corresponding object weight, and the corresponding scene weight, and displays this information on the first screen 111 in batches. For example, the calculation module 164 can control the first screen 111 to display the corresponding object information and the corresponding scene information of the previous few transactions by sampling without replacement based on multiple dynamic blocks (not shown) and multiple playback times on the first screen 111. After a period of time, the calculation module 164 re-identifies the display content of the second screen 141.
[0081] It should be added that the embodiments of Figures 11 and 12 can be combined with the embodiments of Figures 6 to 10. In other words, users can also communicate with artificial intelligence, and artificial intelligence can provide various responses after communicating with it.
[0082] According to the embodiments shown in Figures 6 to 12 above, when the second body 140 is in the open position relative to the first body 110, the AI-recognized content can be voice-triggered conversation, and the AI-recognized type can be voice-triggered conversation and voice-triggered light control. When the second body 140 is in the covered position relative to the first body 110, the AI-recognized content can be voice-triggered conversation and slide-triggered display of the most suitable content, and the AI-recognized type can be voice-triggered conversation and voice-triggered light control.
[0083] Based on the above, through the combination of the electronic device 100 of the present invention and artificial intelligence, the electronic device 100 can provide timely feedback when the user needs screen-related information, thereby improving the convenience of the user when using the electronic device 100. In addition, the electronic device 100 can also adjust the display mode of the light-emitting module 162 according to the user's voice commands and language, further enhancing the user experience.
[0084] In summary, in the electronic device of the present invention, the second body is disposed on the support member. The support member is slidably disposed on the first body along the sliding direction and has a triangular groove and a main slide rail. The elastic telescopic module is movably disposed in the triangular groove, and the fixed end of the elastic telescopic module is locked at the third vertex of the triangular groove, while the movable end of the elastic telescopic module is located in the main slide rail and passes through the main slide rail and is locked to the first body. Through this design, the electronic device of the present invention can assist the user in sliding the second body and the support member relative to the first body to the covered position and the open position with less force, thereby improving the user experience. [Simplified Explanation of the Diagram]
[0019] FIG1A is a schematic diagram of the appearance of the electronic device when the second body is in the covered position according to an embodiment of the present invention. FIG1B is an exploded view of the electronic device of FIG1A. FIG1C is a schematic diagram of the appearance of the electronic device of FIG1A omitting the second body. FIG1D is an enlarged view of the electronic device of FIG1C. FIG1E is a schematic diagram of the appearance of the elastic telescopic module of FIG1C. FIG1F is a side view of the electronic device of FIG1A. FIG2A is a schematic diagram of the appearance of the second body of FIG1A moved to the transition position. FIG2B is an enlarged view of the electronic device of FIG2A. FIG3A is a schematic diagram of the appearance of the second body of FIG1A moved to the open position. FIG3B is an enlarged view of the electronic device of FIG3A. FIG3C is a side view of the electronic device of FIG3A. FIG4A is a schematic diagram of the appearance of the triangular groove and elastic telescopic module according to another embodiment of the present invention. FIG4B and FIG4C are schematic diagrams of the appearance of the elastic telescopic module of FIG4A moving along the sliding direction. FIG5A is a schematic diagram of the appearance of the triangular groove and elastic telescopic module according to yet another embodiment of the present invention. Figures 5B and 5C are schematic diagrams showing the appearance of the elastic telescopic module of Figure 5A moving along the sliding direction. Figure 6 is a flowchart of artificial intelligence interaction between an electronic device and a user according to an embodiment of the present invention. Figure 7 is another flowchart of artificial intelligence interaction between an electronic device and a user according to an embodiment of the present invention. Figure 8 is yet another flowchart of artificial intelligence interaction between an electronic device and a user according to an embodiment of the present invention. Figure 9 is a flowchart of interaction between the light-emitting module and a user in an electronic device according to an embodiment of the present invention. Figure 10 is another flowchart of interaction between the light-emitting module and a user in an electronic device according to an embodiment of the present invention. Figure 11 is a flowchart of adjusting the content displayed on the first screen of an electronic device according to an embodiment of the present invention by combining the first screen with artificial intelligence to identify the content of the second screen. Figure 12 is a flowchart of adjusting the content displayed on the first screen of an electronic device according to an embodiment of the present invention by combining the first screen with a camera module.
Claims
1. An electronic device comprising: A first body, including a first screen; A carrier member is slidably disposed on the first body along a sliding direction. The carrier member has a triangular groove and a main slide rail extending along the sliding direction. An elastic telescopic module is movably disposed in the carrier member. The elastic telescopic module has a fixed end and a movable end. The fixed end is locked in the triangular groove, and the movable end passes through the main slide rail and is locked to the first body. A second body is disposed on the carrier member. The second body includes a second screen. The elastic telescopic module is adapted to move the second body and the carrier member relative to the first body between a covered position and an open position through elastic force, so that the second screen covers or exposes the first screen.
2. The electronic device as claimed in claim 1, wherein the triangular recess has an edge, a first vertex, a second vertex and a third vertex, the edge extending in a sliding direction and disposed adjacent to the main slide rail, the first vertex and the second vertex being located at opposite ends of the edge, the third vertex being away from the edge and the main slide rail, and the fixed end being locked to the third vertex.
3. The electronic device as claimed in claim 2, wherein the main slide rail is located within the triangular groove, and the movable end is adapted to move between the first vertex and the second vertex.
4. The electronic device as claimed in claim 2, wherein the elastic telescopic module includes a telescopic rod, an elastic element and two fixed rods, the elastic element being sleeved on the telescopic rod, the two ends of the telescopic rod being respectively connected to the two fixed rods, and the two fixed rods being respectively located at the fixed end and the movable end and respectively locked to the third apex and the first body.
5. The electronic device as claimed in claim 2, wherein the angles of the first vertex and the second vertex are both less than 90 degrees.
6. The electronic device of claim 2, wherein in the sliding direction, the second vertex is located between the third vertex and the first vertex, the angle of the first vertex is less than 90 degrees, and the angle of the second vertex is equal to or greater than 90 degrees.
7. The electronic device of claim 2, wherein in the sliding direction, the first vertex is located between the third vertex and the second vertex, the angle of the first vertex is equal to or greater than 90 degrees, and the angle of the second vertex is less than 90 degrees.
8. The electronic device as claimed in claim 1 further includes a plurality of sliders, the carrier having a plurality of secondary slide rails extending along the sliding direction, the sliders being locked to the first body and located within the secondary slide rails.
9. The electronic device as claimed in claim 8, wherein the first body further includes a fixing member, a first frame and a main body, the first frame being disposed on the main body, the fixing member and the first screen being disposed on the first frame, and the sliders being locked to the fixing member.
10. The electronic device as claimed in claim 1, wherein the second body further includes a second frame disposed on the carrier, and the second screen is disposed on the second frame.
11. The electronic device of claim 1, wherein the length of the second screen in the sliding direction is greater than the length of the first screen in the sliding direction.
12. The electronic device as claimed in claim 1 further includes a camera module and two light-emitting modules, the camera module being disposed on the second body and the two light-emitting modules being disposed on the first body, the two light-emitting modules being located on opposite sides of the second body, the camera module being used to capture images and the two light-emitting modules being used to display light signals.
13. A method for interacting with artificial intelligence, comprising: Provide the electronic device as described in claim 1; Receive a command to enter an AI conversation mode; Receive a conversation input between a user and an artificial intelligence; have the artificial intelligence identify one of the contents displayed on the second screen; and have the artificial intelligence respond based on the identified contents.
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