Holographic suspension imaging AI intelligent terminal
Through the integration of holographic suspension imaging of AI smart terminals with AI technology, the aerial suspension images required by users are generated, solving the problem of rapid transformation of creativity into interactive game forms in the existing technology, and enhancing the entertainment fun and creative sense of achievement of the smart terminal.
Patent Information
- Application Number
- CN202510756290.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-08
- Publication Date
- 2025-07-11
AI Technical Summary
The prior art is difficult to quickly transform users' creativity into interactive game forms through aerial suspension imaging, and lacks entertainment and creative achievement.
Through the deep integration of holographic suspension imaging and AI technology, the floating imaging module, interaction module and control module are used to combine optical waveguide arrays and gesture recognition systems to generate the aerial suspension images needed by users, and realize creative real-time optimization through voice and gesture interaction.
It realizes the interactive creative experience of users in 'creative conception - scene presentation - real-time optimization', enhances the entertainment fun of the smart terminal, making it a "creative playmate" for users, with immersive experience and a sense of creative achievement.
Smart Images

Figure CN120294998A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of optical imaging devices, and particularly to a holographic floating imaging AI intelligent terminal. Background Art
[0002] With the development of imaging display technology, the requirements for imaging characteristics are constantly increasing. The aerial floating imaging technology is that the image light emitted by the display device is projected onto the imaging lens assembly and then refocused in the air on the other side of the imaging lens assembly to form a floating real image. The aerial imaging technology forms an image in the air, enabling people to see the image without the aid of auxiliary devices such as VR glasses, giving a strong visual shock effect.
[0003] Some embodiments of this specification aim to deeply integrate holographic floating imaging with AI technology, allowing AI to quickly realize users' whimsical ideas. Users can develop their mental abilities like playing a level-passing game in the closed loop of 'proposing ideas - seeing results - dynamically optimizing ideas', and at the same time gain a sense of accomplishment in creation. By transforming the AI-generated content into an interactive game form, the functional boundary of the intelligent terminal is further expanded, and its entertainment and interestingness are enhanced. Finally, the intelligent terminal becomes the user's 'creative playmate' with the dual positioning of 'technical tool + entertainment carrier'. Summary of the Invention
[0004] The present invention provides a holographic floating imaging AI intelligent terminal. Through the deep integration of holographic floating imaging with AI technology, every idea spoken by the user is instantly transformed into a dynamic holographic scene floating in the air, enabling users to realize thinking, viewing, and creating simultaneously in the interactive creation of 'creative concept - scene presentation - real-time optimization', just like experiencing a'magic building block game'. Users will be addicted to the exploration process of 'how will the holographic image change in the next second', just like playing an adventure game with continuously updated plot, and thus form a continuous exploration desire for the technical functions.
[0005] The present invention provides a holographic floating imaging AI intelligent terminal, including a floating imaging module, an interaction module, and a control module; the floating imaging module includes a display and an imaging lens assembly, the display is used for emitting image light, and the imaging lens assembly is used for receiving the image light and focusing the image light and then emitting it in the air to form an aerial floating image; the interaction module is signal-connected to the control module, the interaction module is used for receiving user instructions and converting the instructions into control signals to drive the image generation system to generate the aerial floating image required by the user; at the same time, it feeds back information such as the instruction execution status or image generation parameters to the control module; the control module is used for realizing the control related to the aerial floating image according to the user instructions output by the interaction module.
[0006] A holographic floating imaging AI intelligent terminal provided by the present invention further includes a housing. A cavity is formed inside the housing, and at least the display, the interaction module, and the control module are accommodated in the cavity. A light-transmitting opening is formed at the top of the housing, and the imaging lens assembly is disposed at the light-transmitting opening. The outgoing light of the imaging lens assembly can be emitted from the light-transmitting opening to form the aerial floating image.
[0007] For a holographic floating imaging AI intelligent terminal provided by the present invention, the imaging lens assembly includes: a first optical waveguide array; a second optical waveguide array, which is stacked with the first optical waveguide array, and the second optical waveguide array is orthogonally disposed with the first optical waveguide array.
[0008] For a holographic floating imaging AI intelligent terminal provided by the present invention, the first optical waveguide array includes a plurality of first optical waveguides, and a first reflecting surface is provided on one side of each first optical waveguide; the second optical waveguide array includes a plurality of second optical waveguides, and a second reflecting surface is provided on one side of each second optical waveguide. The first reflecting surface is perpendicularly disposed with the second reflecting surface. Among them, the light-emitting end of each light path channel faces at least one of the second reflecting surfaces, so that the image light can be incident on the second reflecting surface.
[0009] A holographic floating imaging AI intelligent terminal provided by the present invention further includes a light guiding element. The light guiding element is located between the display and the imaging lens assembly. The light-emitting surface of the light guiding element is obliquely intersected with the light-incident surface of the imaging lens assembly. The light guiding element can accurately control the propagation path of the light emitted by the display, realize the directional guiding and management of the light path, screen out the outgoing light within a preset angle range, and guide this part of the light into the imaging lens assembly.
[0010] For a holographic floating imaging AI intelligent terminal provided by the present invention, the background of the generated aerial floating image is black or transparent.
[0011] A holographic floating imaging AI intelligent terminal provided by the present invention further includes a gesture recognition system, and the gesture recognition system is signal-connected to the control module. The gesture recognition system is used for the user to interact with the aerial floating image.
[0012] A holographic floating imaging AI intelligent terminal provided by the present invention further includes an audio playback module, and the audio playback module is signal-connected to the control module; the control module is used to control the audio playback module to play the audio related to the aerial floating image.
[0013] A holographic floating imaging AI intelligent terminal provided by the present invention, wherein the imaging lens assembly is one of a microlens array, a Fresnel lens group, a strip-shaped reflector or a dihedral reflector.
[0014] A holographic floating imaging AI intelligent terminal provided by the present invention, wherein the display is one of an LCD, an LED, an OLED, an LCOS, a DLP or a projector, etc.
[0015] The holographic floating imaging AI intelligent terminal provided by the present invention, through the deep integration of holographic floating imaging and AI technology, enables AI to quickly realize the user's whimsical ideas and generate the floating images in the air required by the user, allowing the user to develop their mental ability in the closed loop of 'putting forward ideas - seeing the results - dynamically optimizing ideas', just like playing a level-breaking game, while harvesting the sense of achievement of creation. By transforming the AI-generated content into an interactive game form, the functional boundary of the intelligent terminal is further expanded, and its entertainment interest is enhanced. Finally, the intelligent terminal, with the dual positioning of 'technical tool + entertainment carrier', becomes the user's 'creative playmate'. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In order to more clearly illustrate the technical solutions in the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0017] Figure 1 It is a schematic structural diagram of the holographic floating imaging AI intelligent terminal provided by the present invention.
[0018] Figure 2 It is a schematic block diagram of the functional modules of the holographic floating imaging AI intelligent terminal provided by the present invention.
[0019] Figure 3 It is a partial schematic diagram of the internal structure of the holographic floating imaging AI intelligent terminal provided by the present invention.
[0020] Figure 4 is Figure 1 a schematic structural diagram of the imaging lens assembly shown in
[0021] Figure 5 is Figure 1 a schematic imaging principle diagram of the imaging lens assembly shown in
[0022] Reference numerals: 10: Imaging lens assembly; 11: First optical waveguide; 12: Second optical waveguide; 111: First reflecting surface; 121: Second reflecting surface; 20: Display; 30: Housing; 40: Light guiding element; 100: Holographic floating image. Detailed implementation manners
[0023] To make the objectives, technical solutions and advantages of the present invention clearer, the technical solutions in the present invention will be clearly and completely described below with reference to the accompanying drawings in the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments in the present invention without making creative efforts shall fall within the protection scope of the present invention.
[0024] The following combines Figures 1-5 to describe the holographic floating imaging AI intelligent terminal of the present invention.
[0025] As Figures 1-3As shown, in an embodiment of the present invention, the holographic floating imaging AI intelligent terminal includes: a floating imaging module 150, an interaction module 160, and a control module 170. The floating imaging module 150 includes a display 20 and an imaging lens assembly 10. The display 20 is used to emit image light rays, and the imaging lens assembly 10 is used to receive the image light rays, and after focusing the image light rays, emit them into the air to form an aerial floating image 100; the floating imaging module 150 is used for aerial imaging. The interaction module 160 is used to receive user instructions, convert the instructions into control signals, and drive the image generation system to generate the aerial floating image required by the user; at the same time, feedback information such as the instruction execution status or image generation parameters to the control module 170; the control module 170 is at least signal-connected to the interaction module 160, so as to realize control related to aerial imaging based on the interaction information described by the interaction module 160. As an example, the foregoing control can be implemented by an interaction processing unit 172 in the control module 170. In some embodiments, the floating imaging module 150 can also be signal-connected to the control module 170, and the control module 170 can control whether the floating imaging module 150 performs aerial imaging. As an example, it can be controlled by an image output control unit 171 in the control module 170 whether the floating imaging module 150 performs aerial imaging. In some embodiments, the holographic floating imaging AI intelligent terminal, by virtue of its connection with the data large model, can, according to the user's voice instruction, enable the large model to generate the content of the aerial floating image required by the user. This terminal deeply integrates holographic floating technology and artificial intelligence algorithms. At the hardware level, through a special optical waveguide array structure and a precise spatial positioning system, a three-dimensional imaging space is constructed, enabling the image to be presented in a medium-free suspension in the air; at the software level, real-time interaction with the data large model is the core to achieve intelligent image generation. When the user issues a voice instruction, the built-in voice recognition module 200 in the terminal will convert natural language into an instruction code recognizable by a machine, and then the instruction is transmitted to the connected data large model. Based on deep learning algorithms and a huge training data set, the data large model performs semantic parsing and logical reasoning on the instruction, and accurately captures the user's needs. For example, if the user requests "generate a mechanical dragon flying in the universe", the large model will quickly extract relevant information such as mechanical structure, cosmic scene, and biological form from the vast amount of data, and generate three-dimensional model data through complex algorithms. These data are then fed back to the terminal, and the terminal converts them into high-definition aerial floating images, making the mechanical dragon vividly "float" in front of the user. This technology not only revolutionizes the traditional human-computer interaction method, allowing users to obtain information and content in a more natural and intuitive form, but also brings an immersive intelligent experience to users. The aerial floating image can vividly present various three-dimensional forms such as characters, animations, anime characters, cartoon images, animal forms, and product models. In some optional embodiments, the background of the generated aerial floating image is black or transparent.In some alternative embodiments, the holographic floating imaging AI intelligent terminal may further include an audio playback module 180. The control module 170 may control the audio playback module 180 to play audio. Specifically, the audio may include explanations about the content shown in the air imaging, background music, and other content. As an example, the audio control unit 173 in the control module 170 may output the identifier of the audio content to the audio playback module to control its audio playback. Further, the control module 170 may also control the audio playback module 180 to switch the audio content based on the interaction information output by the interaction module 160. As an example, the interaction processing unit 172 may obtain the interaction information and control the audio playback module 180 to switch the audio content. In still some alternative embodiments, the holographic floating imaging AI intelligent terminal may further include a touch button module 190. The touch button module 190 may include touch buttons to receive the user's touch operations. The touch button module 190 may generate touch button information based on the user's touch operations and output it to the control module 170. The control module 170 may implement related controls based on the touch button information. As an example, the touch control unit 174 in the control module 170 may receive the touch button information output by the touch button module 190 and implement related controls. Specifically, the related controls may include whether the holographic floating imaging AI intelligent terminal is powered on, the audio volume size, etc., and may also include the aforementioned controls related to the air imaging.
[0026] It should be understood that Figure 2 The control module and its units shown can be implemented in various ways. For example, they can be implemented through hardware, software, or a combination of software and hardware. Among them, the hardware part can be implemented using dedicated logic; the software part can be stored in a memory and executed by an appropriate instruction execution system, such as a microprocessor or dedicated design hardware. Those skilled in the art can understand that the above methods and systems can be implemented using computer-executable instructions and / or control codes included in a processor. For example, such codes are provided in carrier media such as disks, CDs, or DVD-ROMs, or in the memories of programmable devices. The control module and its units in this specification can be implemented not only by hardware circuits of programmable hardware devices such as very large scale integrated circuits or gate arrays, semiconductors such as logic chips and transistors, or field programmable gate arrays and programmable logic devices, but also by software executed by various types of processors, or by a combination of the above hardware circuits and software (e.g., firmware).
[0027] It should be noted that the above description of the control module and its units is only for convenience of description and does not limit this specification to the scope of the examples given. It can be understood that for those skilled in the art, after understanding the principle of the system, they may, without departing from this principle, arbitrarily combine the units to form a subsystem connected to other units. Or split some units to obtain more units or multiple sub-units under that unit. For example, the interaction processing unit 172 can be combined with the image output control unit 171 and the audio control unit 173 respectively. For another example, the image output control unit 171 can be omitted. Such deformations are all within the scope disclosed in this specification.
[0028] Furthermore, in the embodiments of the present invention, it further includes a housing 30. A cavity is formed inside the housing 30, and at least the display 20, the interaction module 160, and the control module 170 are accommodated in the cavity. A light-transmitting opening is formed at the top of the housing 30, and the imaging lens assembly 10 is disposed at the light-transmitting opening. The emitted light of the imaging lens assembly 10 can be emitted from the light-transmitting opening to form the aerial floating image 100. The inside of the housing 30 forms a closed space for spatial protection, and functional structural arrangements are made for components such as a heat dissipation assembly. This is conventional technology, so no redundant explanation is given.
[0029] In some embodiments, the holographic floating imaging AI intelligent terminal may further include a light guiding element 40. The light guiding element 40 is located between the display 20 and the imaging lens assembly 10. The light-emitting surface of the light guiding element 40 is obliquely intersecting with the light-incident surface of the imaging lens assembly 10. The light guiding element 40 can accurately control the propagation path of the light emitted by the display 20 to achieve directional guidance and management of the light path, screen out the emitted light within a preset angle range, and guide this part of the light into the imaging lens assembly 10.
[0030] The light guiding element 40 can be a component that guides the incident light based on attributes such as the propagation direction and selectively allows part of the light to penetrate. In some embodiments of this specification, the light guiding element 40 is used to accurately control the propagation path of the light emitted by the display 20 to achieve directional guidance and management of the light path. In some embodiments, the light guiding element 40 is used to accurately control the propagation path of the light emitted by the display 20 to achieve directional guidance and management of the light path, screen out the emitted light within a preset angle range, and guide this part of the light into the imaging lens assembly 10.
[0031] In some embodiments, as the light guiding element 40, it can effectively eliminate the interference of stray light in a specific direction to obtain a clear image. In some embodiments, as the light guiding element 40 may further include a transparent substrate, on which fine optical prisms are provided, these prisms are arranged at a certain angle, and these prisms can allow the incident light perpendicular to the plane where the light guiding element 40 is located to pass through, while blocking the light in other directions.
[0032] Further, in the embodiments of the present invention, the display 20 and the imaging lens assembly 10 may be arranged at an angle or stacked.
[0033] Such as Figure 4 As shown, in an embodiment of the present invention, the imaging lens assembly 10 includes: a first optical waveguide array and a second optical waveguide array. The second optical waveguide array is stacked with the first optical waveguide array, and the second optical waveguide array is orthogonally arranged with the first optical waveguide array.
[0034] Specifically, the imaging lens assembly 10 includes two layers of optical waveguide arrays, and the two layers of optical waveguide arrays are orthogonally arranged, wherein the second optical waveguide array is stacked with the first optical waveguide array. Image light is incident on the second optical waveguide array, reflected by the second optical waveguide array to the first optical waveguide array, and then reflected by the first optical waveguide array into the air to form a floating real image 100.
[0035] Further, the first optical waveguide array includes a plurality of first optical waveguides 11, and a first reflection surface 111 is provided on one side of the first optical waveguide 11. The second optical waveguide array includes a plurality of second optical waveguides 12, and a second reflection surface 121 is provided on one side of the second optical waveguide 12, and the second reflection surface 121 is perpendicularly arranged with the first reflection surface 111.
[0036] Such as Figure 5 As shown, the first optical waveguide array and the second optical waveguide array are orthogonal, and any optical signal is orthogonally decomposed. The original signal is decomposed into two mutually orthogonal signals, signal X and signal Y. Signal X is in the first physical layer and is reflected at the second reflection surface 121 at the same reflection angle as the incident angle. At this time, signal Y remains parallel to the first physical layer, passes through the first physical layer, and is reflected at the first reflection surface 111 at the same reflection angle as the incident angle on the surface of the second physical layer. The reflected optical signal composed of signal Y and signal X after reflection is mirror-symmetrical with the original optical signal. Therefore, any direction of light can achieve mirror symmetry after passing through the second optical waveguide array and the first optical waveguide array. The divergent light of any light source will be refocused and imaged at the symmetrical position after passing through the imaging lens assembly 10. The imaging distance is the same as the distance between the holographic reflection layer and the light source, which is equidistant imaging, and the position of the image is in the air, without a specific carrier, and directly presents the real image in the air. The image seen by the user in the space is the light emitted by the actual existing object.
[0037] Furthermore, in this embodiment, the display 20 can be one of LCD, LED, OLED, LCOS, DLP, or a projector, etc.
[0038] Optionally, in an embodiment of the present invention, the imaging lens assembly 10 can be any one of a microlens array, a Fresnel lens group, a strip-shaped reflector, or a dihedral reflector.
[0039] In an embodiment of the present invention, the holographic floating imaging AI intelligent terminal is further provided with a gesture recognition system, and the gesture recognition system is signal-connected to the control module 170. The gesture recognition system is used for the user to interact with the aerial floating image 100.
[0040] Specifically, in this embodiment, the aerial floating image 100 is a sprite, and the sprite has functions such as education + companionship and voice broadcast. The user can interact with the sprite through the voice interaction system to make the sprite execute the instructions of the personnel. The user can also interact with the sprite through the gesture recognition system. Different gesture actions can drive the sprite to execute different actions. For example, rotating the finger can drive the sprite to circle; moving the finger forward or backward can drive the sprite to move forward or backward.
[0041] Finally, it should be noted that: the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A holographic floating imaging AI intelligent terminal, characterized in that It includes a floating imaging module, an interaction module, and a control module; The floating imaging module includes a display and an imaging lens assembly. The display is used to emit image light, and the imaging lens assembly is used to receive the image light, focus the image light, and then emit it into the air to form a suspended image in the air; The interaction module is signal-connected to the control module. The interaction module is used to receive user instructions, convert the instructions into control signals, and drive the image generation system to generate the suspended image required by the user. At the same time, it feeds back information such as the instruction execution status or image generation parameters to the control module; The control module is used to implement control related to the suspended image according to the user instruction output by the interaction module.
2. The holographic floating imaging AI intelligent terminal according to claim 1, wherein It further includes a housing. A cavity is formed inside the housing. At least the display, the interaction module, and the control module are accommodated in the cavity. A light-transmitting opening is formed at the top of the housing. The imaging lens assembly is arranged at the light-transmitting opening, and the outgoing light of the imaging lens assembly can be emitted from the light-transmitting opening to form the suspended image in the air.
3. The holographic levitation imaging AI intelligent terminal according to claim 1, characterized in that The imaging lens assembly includes: A first optical waveguide array; A second optical waveguide array, which is stacked with the first optical waveguide array, and the second optical waveguide array is orthogonally arranged with the first optical waveguide array.
4. The holographic floating imaging AI intelligent terminal according to claim 3, characterized in that The first optical waveguide array includes a plurality of first optical waveguides, and a first reflecting surface is provided on one side of each first optical waveguide; The second optical waveguide array includes a plurality of second optical waveguides, and a second reflecting surface is provided on one side of each second optical waveguide. The first reflecting surface is perpendicular to the second reflecting surface. Among them, the light-emitting end of each light channel faces at least one of the second reflecting surfaces, so that the image light can be incident on the second reflecting surface.
5. The holographic suspended imaging AI intelligent terminal according to claim 1, characterized in that it further includes a light guiding element, which is located between the display and the imaging lens assembly. The light-emitting surface of the light guiding element is obliquely intersecting with the light-incident surface of the imaging lens assembly. The light guiding element can precisely control the propagation path of the light emitted by the display, realize the directional guiding and management of the light path, screen out the outgoing light within a preset angle range, and guide this part of the light into the imaging lens assembly.
6. The holographic suspended imaging AI intelligent terminal according to claim 1, characterized in that the background of the generated suspended image in the air is black or transparent.
7. The holographic levitation imaging AI intelligent terminal according to claim 1, characterized in that, It further includes a gesture recognition system, and the gesture recognition system is signal-connected to the control module. The gesture recognition system is used for the user to interact with the suspended image in the air.
8. The holographic suspended imaging AI intelligent terminal according to claim 1, characterized in that it further includes an audio playback module, and the audio playback module is signal-connected to the control module; the control module is used to control the audio playback module to play audio related to the suspended image in the air.
9. The holographic levitation imaging AI intelligent terminal according to claim 1, characterized in that, The display is one of LCD, LED, OLED, LCOS, DLP, or a projector, etc.
10. The holographic floating imaging AI intelligent terminal according to claim 1, wherein, The imaging lens assembly is one of a microlens array, a Fresnel lens group, a strip-shaped reflector, or a dihedral reflector.
Citation Information
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