Naked eye 3D science popularization and wisdom guide corridor frame

By introducing components such as naked-eye 3D displays, ceiling panels, logos, decorative walls, paved surfaces, and rest areas into the pergola, combined with intelligent lighting and interactive systems, the problem of the pergola's lack of visual appeal and interactivity has been solved, enhancing the visitor experience.

CN120083395BActive Publication Date: 2025-12-16WUHAN LANDSCAPE ARCHITECTURE PLANNING & DESIGN INST CO LTD
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Patent Information

Application Number
CN202510405645.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-02
Publication Date
2025-12-16
Estimated Expiration
2045-04-02

AI Technical Summary

Technical Problem

The existing pergola lacks visual appeal and interactivity, resulting in a poor visitor experience.

Method used

It incorporates components such as naked-eye 3D displays, ceiling panels, logos, decorative walls, paving surfaces, and rest areas, combined with intelligent lighting and interactive systems to enhance interactivity and visual appeal.

Benefits of technology

The interactive features and various service functions of the naked-eye 3D display enhance the visitor's experience and satisfaction.

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Abstract

The application provides a naked-eye 3D popular science and intelligent guide corridor frame, and relates to the technical field of naked-eye 3D, which comprises the following: a naked-eye 3D display screen that senses user behavior and realizes interaction; a top plate, two sides of which are connected with the naked-eye 3D display screen and a logo respectively; the logo is arranged on one side of the top plate and is parallel to the naked-eye 3D display screen, and is used for identifying and beautifying the corridor frame; a decorative wall is in the same plane with the logo and is apart from the logo by a first preset distance, and an embedded LED light bar is used for light effect switching; a paving surface is paved on the ground and is composed of ground light-transmitting concrete, and is provided with an intelligent light belt; and a rest area. The naked-eye 3D popular science and intelligent guide corridor frame solves the technical problem that the current corridor frame lacks ornamental and interactive properties, resulting in low experience of visitors, and through the interactive function of the display screen and the leisure function facilities, the visitors can interact with the display content, and the participation and experience of the visitors are improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of naked eye 3D, in particular to naked eye 3D popular science and intelligent guide gallery frame. BACKGROUND

[0002] In the current exhibition and tour environment, the gallery frame is a common structure, which is usually used to display information, provide shelter or as a place for visitors to rest. However, the traditional gallery frame design is often limited to basic structural functions, lacks ornamental and interactive, and has low entertainment, resulting in a low experience for visitors during the tour, and it is difficult to produce a deep impression.

[0003] In summary, the prior art has the technical problem that the current gallery frame lacks ornamental and interactive, resulting in a low experience for visitors. SUMMARY

[0004] The purpose of the present application is to provide a naked eye 3D popular science and intelligent guide gallery frame to solve the technical problem in the prior art that the current gallery frame lacks ornamental and interactive, resulting in a low experience for visitors.

[0005] In view of the above problems, the present application provides a naked eye 3D popular science and intelligent guide gallery frame, wherein the naked eye 3D popular science and intelligent guide gallery frame comprises: a naked eye 3D display screen for sensing user behavior and realizing interaction; a top plate parallel to the ground, and two sides of the top plate are connected with the naked eye 3D display screen and the logo respectively, for covering the top area; a logo arranged on one side of the top plate and parallel to the naked eye 3D display screen, for identifying and beautifying the gallery frame; a decorative wall in the same plane as the logo and at a first predetermined distance, with an embedded LED light bar for light effect switching; a paving surface made of ground light-transmitting concrete and installed with an intelligent light strip; a rest area which is a composite functional area providing rest, interaction and charging services for visitors.

[0006] Optionally, the material of the naked eye 3D display screen is a photonic film.

[0007] Optionally, the naked eye 3D display screen comprises: a pressure sensing module that collects visitor's foot pressure change information and body contact signals in front of the naked eye 3D display screen and uploads to the display optimization unit for interface display optimization; a motion capture system that tracks and identifies the visitor's posture through a visual recognition component and uploads to the display optimization unit for interface response.

[0008] Optionally, the top plate is embedded with a point light strip.

[0009] Optionally, the rest area comprises: a wireless charging module strip-shaped seat stool, which is in communication connection with the AI intelligent system, and is used for adaptive seat surface temperature adjustment for visitors; and an intelligent interactive desktop, which is in communication connection with the AI intelligent system, and is used for dialogue interaction with visitors.

[0010] Optionally, the wireless charging module strip-shaped seat stool comprises: a smart temperature control system, which is used for receiving the regulation and control instructions of the AI intelligent system to adjust the temperature of the seat stool; and an integrated temperature sensor, which is used for collecting the temperature of the seat stool and uploading the collected data to the AI intelligent system.

[0011] Optionally, the intelligent interactive desktop comprises a Bluetooth sound, which is used for dialogue and music playing.

[0012] Optionally, the integrated temperature sensor comprises a data preprocessing unit, which comprises: a temperature monitoring data sequence obtaining subunit, which is used for obtaining temperature monitoring data collected by the integrated temperature sensor in a preset monitoring window to obtain a temperature monitoring data sequence; a cleaning temperature monitoring data sequence obtaining subunit, which is used for cleaning and denoising the temperature monitoring data sequence to obtain a cleaned temperature monitoring data sequence; an enhanced temperature monitoring data obtaining subunit, which is used for performing feature convolution enhancement on the cleaned temperature monitoring data sequence to obtain enhanced temperature monitoring data; and a data uploading subunit, which is used for uploading the enhanced temperature monitoring data to the AI intelligent system.

[0013] Optionally, the enhanced temperature monitoring data obtaining subunit comprises: a multi-scale data feature set obtaining micro unit, which is used for performing multi-scale convolution on the cleaned temperature monitoring data sequence to obtain a multi-scale data feature set; a fused data feature obtaining micro unit, which is used for performing feature interaction fusion on the multi-scale data feature set to obtain a fused data feature; and a convolution analysis micro unit, which is used for performing convolution analysis on the fused data feature and the last cleaned temperature monitoring data in the cleaned temperature monitoring data sequence to obtain the enhanced temperature monitoring data.

[0014] Optionally, the fusion data feature obtaining micro-unit comprises: a second multi-scale data feature obtaining micro-unit, configured to randomly and without replacement obtain a first multi-scale data feature and a second multi-scale data feature from the multi-scale data feature set; a feature similarity set determining micro-unit, configured to perform feature similarity comparison on the first multi-scale data feature and the second multi-scale data feature to determine a feature similarity set; a first interactive fusion data feature obtaining micro-unit, configured to normalize the feature similarity set and fill the normalized feature similarity set into an initially empty matrix to obtain a first interactive fusion matrix, and perform convolution operation on the first interactive fusion matrix and the second multi-scale data feature to obtain a first interactive fusion data feature; and a fusion data feature obtaining micro-unit, configured to again randomly and without replacement obtain a third multi-scale data feature from the multi-scale data feature set, perform feature fusion on the third multi-scale data feature and the first interactive fusion data feature to obtain a second interactive fusion data feature, and perform multiple times of fusion until all multi-scale data features in the multi-scale data feature set are analyzed to obtain the fusion data feature.

[0015] The technical solutions provided in the present application have at least the following beneficial effects:

[0016] By the naked eye 3D display screen, the naked eye 3D display screen is used for perceiving user behavior and realizing interaction; the top plate is parallel to the ground, and two sides of the top plate are connected with the naked eye 3D display screen and the logo respectively, and is used for covering the top area; the logo is arranged on one side of the top plate and is parallel to the naked eye 3D display screen, and is used for identifying and beautifying the gallery frame; the decorative wall is in the same plane with the logo and is apart from the logo by a first preset distance, and the built-in LED light bar is used for light effect switching; the paving surface is paved on the ground and is composed of ground light-transmitting concrete, and the intelligent lamp strip is installed; the rest area is a composite function area for providing rest, interaction and charging services for visitors. That is, through the interaction function of the naked eye 3D display screen, the visitors can interact with the display content, the rest area provides a variety of services to meet the rest, interaction and charging needs of the visitors, meets the various needs of the visitors, and improves the overall tour quality and satisfaction.

[0017] The above description is only a summary of the technical solutions of the present application. In order to more clearly understand the technical means of the present application, the present application can be implemented in accordance with the content of the specification, and in order to make the above and other purposes, characteristics and advantages of the present application more obvious and easy to understand, the following specific embodiments of the present application are described. It should be understood that the content described in this section is not intended to identify the key or important features of the embodiments of the present application, nor is it intended to limit the scope of the present application. Other features of the present application will become apparent from the following description. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to more clearly illustrate the technical solutions in the application or the prior art, the accompanying drawings needed to be used in the embodiments or prior art description will be briefly introduced. Obviously, the accompanying drawings in the following description are only exemplary, and for those skilled in the art, other drawings can be obtained without creative labor on the basis of the provided drawings.

[0019] Figure 1 Structure diagram of the naked eye 3D popular science and intelligent guide corridor frame of the application.

[0020] Figure 2 Structure diagram of the naked eye 3D popular science and intelligent guide corridor frame of the application.

[0021] Legend: naked eye 3D display screen 1, top plate 2, logo 3, decorative wall 4, intelligent light strip 5, paving surface 6, rest area 7, point light strip 8, LED light bar 9, AI intelligent system 10, pressure sensing module 11, motion capture system 12, wireless charging module bar stool 13, intelligent interactive desktop 14, intelligent temperature control system 15, integrated temperature sensor 16, Bluetooth sound 17, temperature monitoring data sequence obtaining subunit 30, cleaning temperature monitoring data sequence obtaining subunit 31, enhanced temperature monitoring data obtaining subunit 32, data uploading subunit 33. DETAILED DESCRIPTION

[0022] The naked eye 3D popular science and intelligent guide corridor frame provided by the application solves the technical problem that the current corridor frame lacks ornamental and interactive nature, resulting in low experience of visitors in the prior art. The interactive function of the naked eye 3D display screen enables visitors to interact with the display content, and the rest area 7 provides a variety of services to meet the rest, interaction and charging needs of visitors, meeting the various needs of visitors and improving the overall tour quality and satisfaction.

[0023] The technical solutions in the application will be described clearly and completely below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the application, rather than all the embodiments of the application. It should be understood that the application is not limited by the example embodiments described herein. Based on the embodiments of the application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of the application. In addition, it should be noted that only parts related to the application are shown in the drawings for convenience of description.

[0024] Embodiment, please refer to the accompanying Figure 1 The naked eye 3D popular science and intelligent guide corridor frame provided by the application, wherein the naked eye 3D popular science and intelligent guide corridor frame specifically comprises:

[0025] The naked eye 3D display screen 1 is used to perceive user behavior and achieve interaction.

[0026] Further, the material of the naked eye 3D display screen 1 is a photonic film.

[0027] Further, the naked eye 3D display screen 1 includes a pressure sensing module 11 that collects visitor footstep pressure change information and body contact signals in front of the naked eye 3D display screen 1 and uploads them to a display optimization unit for interface display optimization, and a motion capture system 12 that tracks and identifies the visitor's posture through a visual recognition component and uploads it to the display optimization unit for interface response.

[0028] Specifically, the naked eye 3D display screen 1 is a display technology that can display stereoscopic images without the need to wear special glasses to perceive three-dimensional effects. The naked eye 3D display screen 1 uses a new type of material, photonic film, which is more easily adapted to design, and through the pressure sensing module 11 and the motion capture system 12, it can perceive the user's body movements and upload them to the display optimization unit for interactive science popularization display content. Photonic film is a new type of material widely used in display technology, with high optical performance. Photonic film allows light to propagate in a special way, thereby improving display effects, with good light transmission and surface adhesion properties, easily adapting to different shapes, especially for curved or irregularly shaped displays.

[0029] The naked eye 3D display screen 1 includes a pressure sensing module 11 for sensing and recording pressure changes, detecting the pressure applied by visitors through sensors, including footstep pressure change information and body contact signals in front of the naked eye 3D display screen 1, and uploading these data to the display optimization unit. For example, when a visitor approaches the screen, the pressure sensor will detect the change in pressure of the footsteps on the ground and upload this data to the display optimization unit. Based on this, the display optimization unit can adjust the display content, optimize the interface, and the 3D display content will become more vivid and detailed, or enter a different display mode.

[0030] The motion capture system 12 tracks the visitor's posture and movements in real time through visual recognition components such as cameras, analyzes and feeds back human posture, movements or position in real time, detects whether the user has made a specific action (such as waving an arm or touching a specific location), and uploads these captured actions to the display optimization unit, which then adjusts the display interface according to these changes. For example, when a visitor reaches out to touch a virtual object, the display screen may simulate the object's response, creating an interactive experience synchronized with the user's actions.

[0031] Through the combination of the pressure sensing module 11 and the motion capture system 12, the visitor can interact with the display content of the naked-eye 3D display screen 1 in real time, enhancing the dynamic and immersive feeling of the display content.

[0032] The top plate 2 is parallel to the ground, and two sides of the top plate 2 are connected with the naked-eye 3D display screen 1 and the logo 3 respectively, for covering the top area.

[0033] Further, the top plate 2 is built-in with the point light strip 8.

[0034] Specifically, the top plate 2 refers to the plate installed at the topmost position, which is parallel to the ground, and serves to cover the top area, and is usually connected with the naked-eye 3D display screen 1 and the logo 3. The naked-eye 3D display screen 1 and the logo 3 are connected respectively at two sides of the top plate 2, and are parallel. The top plate 2 adopts a new type of star tunnel mirror, which creates a starry three-dimensional visual effect through the built-in point light strip 8 and the principle of optical reflection, and is made of environmentally friendly, light and non-broken materials, which increases the ornamental interest and diversity while being durable and environmentally friendly. The star tunnel mirror can produce a three-dimensional visual effect on the top plate 2, creating a starry effect and enhancing the ornamental interest of the display space. The star tunnel mirror enhances the dynamic and immersive feeling of the visual effect through the cooperation of the point light strip 8.

[0035] The point light strip 8 is built-in in the top plate 2, which can provide adjustable lighting effects and enhance the visual effect of the top plate 2. For example, when the light source is turned on, the light strip can change the color and brightness through programmed control, creating a starry visual experience. When the visitor enters the gallery and looks up at the top plate 2, he or she will see a starry sky created by the point light strip 8, as if looking through a tunnel at the night sky, and will feel as if he or she is under the starry sky. Not only does it enhance the ornamental interest, but it also provides a diversified experience. The point light strip 8 is a decorative lighting device composed of a series of point light sources, which is used to create a lighting effect in the top plate 2.

[0036] The logo 3 is arranged on one side of the top plate 2 and is parallel to the naked-eye 3D display screen 1, for identifying and beautifying the gallery.

[0037] Specifically, Logo 3 usually plays an identification role, which is located on the other side of top plate 2 different from naked-eye 3D display screen 1, vertically connected with top plate 2 on the top and with paving surface 6 on the bottom. Logo 3 adopts modern material resin glass, has good impact resistance, which is 40 times of ordinary glass, improves the durability and safety of gallery top plate 2, has excellent chemical stability and physical stability, can resist chemical corrosion, does not yellow, anti-aging, and has anti-UV function, can maintain its performance in outdoor environment for a long time, at the same time can capture and refract light, create special beauty of light and shadow interweaving.

[0038] Chemical stability refers to the ability of a material to maintain its original properties and performance when exposed to different chemicals or environments. Physical stability refers to the ability of a material to maintain its structure and performance unchanged under changes in physical conditions such as temperature, humidity, and light. Anti-UV function refers to the ability of a material to effectively block ultraviolet radiation, preventing ultraviolet radiation from causing aging, fading or other destructive effects on the material. Light and shadow interweaving refers to the interaction effect of light and object surface reflection, forming rich visual experience. Resin glass has unique optical performance, can capture and refract light, produce beautiful light and shadow interweaving effect, on the Logo 3 of resin glass, refracted and reflected light can create a dynamic light and shadow effect, so that Logo 3 not only is an identification, but also becomes part of visual art.

[0039] The decorative wall 4 is in the same plane as the Logo 3 and is a first preset distance apart, with an embedded LED light bar 9 for light effect switching.

[0040] Specifically, in the intelligent guide gallery, the decorative wall 4 refers to the wall or panel used for decoration and beautification of space. The decorative wall 4 is in the same plane as the Logo 3, vertically connected with the top plate 2 on the top and with the paving surface 6 on the bottom. The decorative wall 4 is a first preset distance apart from the Logo 3, which is usually set beforehand during design and planning, aiming to ensure that the positions of the Logo 3 and the decorative wall 4 in space can both maintain independence and harmoniously combine together.

[0041] The decorative wall 4 is a hollow strip structure, which is a design form with gaps, usually used for decorative or functional purposes. Through the arrangement of gaps and strips, it can create a unique visual effect and provide space for embedding other elements (such as lights, sensors, etc.) inside. The LED light bar 9 is embedded in the hollow strip structure of the decorative wall 4, which can control the color, brightness and change mode of the light through programming. The control system is programmed to change the color and brightness of the light according to the needs of the exhibition content or environment. For example, the atmosphere of the exhibition space can be enhanced by adjusting the color change (such as from blue to red) or brightness change (from dark to bright) of the light. The hollow strip decorative wall 4 is also vertically connected to the top plate 2 and the paving surface 6.

[0042] The light effect of the LED light bar 9 is set through programming control, which can adjust the light effect according to different time periods, exhibition content or audience interaction. For example, the light can switch from a single color to a gradient color, or simulate dynamic light effects such as flashing and breathing. These changes can be coordinated with other display elements in the space to create a technologically advanced visual effect. Through sensing technology, the LED light bar 9 can respond to the actions or proximity of the audience. For example, when the audience approaches the decorative wall 4, the light can become brighter or change color, thereby enhancing the audience's sense of participation and interactive experience, not only enhancing the audience's sense of immersion, but also making the exhibition more lively and dynamic.

[0043] The paving surface 6 is laid on the ground and is composed of ground light-transmitting concrete, and is installed with intelligent light strips 5.

[0044] Specifically, the paving surface 6 refers to the surface covering material on the ground, which is usually used for decoration and protection of the ground. The paving surface 6 is laid on the ground, and the naked-eye 3D display screen 1 is assembled vertically to the paving surface 6. The paving surface 6 uses ground light-transmitting concrete, which can interact with different lights. During the day, it interacts with sunlight to show natural and soft light and shadow effects; at night, it starts the built-in light to create a dreamlike atmosphere. The intelligent light strips 5 are programmable LED light strips that can adjust color, brightness, flashing mode, etc. according to needs. They are usually controlled together with the LED light bar 9 through the control system to achieve coordinated light effects.

[0045] Ground light-transmitting concrete is a special building material with light-transmitting properties, allowing light to pass through its surface or interior. It is usually made by mixing light-transmitting particles or fibers with concrete, which can exhibit natural light and shadow effects in daily environments. The intelligent light strips 5 can be adjusted as needed to change the color, brightness and flashing mode of the light. For example, the intelligent light strips 5 will automatically turn off during the day, relying on natural light to illuminate the ground; at night, the light strips will start to provide soft light effects, or adjust the light color and brightness according to the theme of the exhibition to create a dreamlike atmosphere.

[0046] The use of ground light-transmitting concrete enables the paving surface 6 to interact with the surrounding natural light, presenting a natural and soft light and shadow effect, adding beauty to the space and creating a relaxed and comfortable atmosphere during the day. When night falls, the built-in intelligent light strip 5 is activated, producing a dreamlike light effect that complements the design of the naked-eye 3D display screen 1, allowing visitors to experience a stronger sense of immersion during the visit through the interaction of light and visual effects.

[0047] The rest area 7 is a composite functional area that provides rest, interaction, and charging services for visitors.

[0048] Further, the rest area 7 includes a wireless charging module strip-shaped seat 13 that is communicatively connected to the AI intelligent system 10 for adaptive seat surface temperature adjustment for visitors, and a smart interactive desktop 14 that is communicatively connected to the AI intelligent system 10 for dialogue interaction with visitors.

[0049] Further, the wireless charging module strip-shaped seat 13 includes a smart temperature control system 15 for receiving control instructions from the AI intelligent system 10 to adjust the seat temperature, and an integrated temperature sensor 16 for collecting seat temperature data and uploading the collected data to the AI intelligent system 10.

[0050] Further, the smart interactive desktop 14 includes a Bluetooth speaker 17 for dialogue and music playback.

[0051] Specifically, the rest area 7 is a designated area for visitors, aiming to provide a comfortable environment for them to rest, relax, or make a brief stop. It is usually equipped with seats, tables, or other facilities to enhance the visitor's experience and comfort. The composite functional area refers to a space that can perform multiple functions, not just a single purpose. It not only provides rest functions but also includes additional functions such as interaction and charging services, enhancing the diversity of the space and the quality of services. Interaction refers to the exchange or interaction behavior between visitors and the display content, smart guide corridor rack, including interaction with the surrounding environment, touch screen, display equipment, etc.

[0052] Generally, when designing a naked eye 3D popular science and intelligent guide corridor frame, the location of the rest area 7 is determined according to the overall space layout. A relatively quiet and convenient area is usually selected to avoid interference with the main display area. The rest area 7 is equipped with seats for visitors to relax and rest. The rest area 7 includes a wireless charging module strip-shaped bench 13 and an intelligent interactive desktop 14, wherein the wireless charging module strip-shaped bench 13 is connected in parallel with the decorative wall 4 and perpendicular to the paving surface 6. The wireless charging module strip-shaped bench 13 integrates wireless charging function and can provide charging service for devices supporting wireless charging. The bench is designed in a strip shape, which can accommodate multiple users and provide comfortable seats, usually placed in the exhibition or rest area 7. When visitors place their devices on the bench, they can start charging without connecting charging cables, providing convenient power support.

[0053] The AI intelligent system 10 refers to a system controlled and regulated by artificial intelligence, which automatically adjusts the functions of the device according to sensor data, environmental conditions and user needs. For example, in the wireless charging module strip-shaped bench 13, the AI system can automatically adjust the temperature of the seat surface according to the environmental temperature and user needs.

[0054] The wireless charging module strip-shaped bench 13 is built-in with a smart temperature control system 15 and an integrated temperature sensor 16, which is controlled by the AI intelligent system 10, and can automatically adjust the temperature of the seat surface according to the environment and user body temperature, keeping warm in winter and cool in summer, and improving the comfort of outdoor rest. The intelligent interactive desktop 14 realizes wireless music playing by using the AI intelligent system 10 through Bluetooth speakers 17, and can also have intelligent conversations to query weather, historical knowledge and other information, realizing full interaction. Specifically, the strip-shaped bench communicates with the AI intelligent system 10, collects the temperature of the seat surface through the built-in temperature sensor, and automatically adjusts the temperature of the seat according to the surrounding environmental temperature. If the external environment is relatively cold, the AI intelligent system 10 will start the seat heating function; if the environmental temperature is relatively high, the temperature of the seat will be automatically reduced to maintain comfort.

[0055] The wireless charging module strip-shaped bench 13 includes a smart temperature control system 15 and an integrated temperature sensor 16. The integrated temperature sensor 16 is an embedded sensor that monitors the temperature of the bench surface or the surrounding environment and transmits real-time data to the AI intelligent system 10. The AI intelligent system 10 is a system that can automatically adjust and control according to sensor data and environmental conditions, analyzes the data received from the integrated temperature sensor 16, judges the current environmental temperature according to the received temperature data, and issues instructions to the smart temperature control system 15. The smart temperature control system 15 receives the control instructions from the AI intelligent system 10 and controls the heating or cooling of the bench to maintain a comfortable seat temperature. As the external temperature and the temperature of the bench change, the intelligent system will continuously monitor and adjust the temperature of the bench to adapt to the comfort needs of visitors.

[0056] The smart interactive desktop 14 is equipped with a voice recognition system and a touch screen, and carries on a dialogue with the visitors through the AI intelligent system 10. The visitors can ask questions to the smart interactive desktop 14 through voice or touch screen, and the smart interactive desktop 14 will answer the questions of the visitors according to the preset knowledge base. In addition to answering questions, the smart interactive desktop 14 can also provide weather query, historical knowledge, entertainment content and other functions according to the needs, and improve the interactive experience of the users. The smart interactive desktop 14 will adjust the interactive feedback in real time according to the input content (such as voice or touch) of the visitors, and carry on a dialogue and music playing with the users through the Bluetooth sound 17.

[0057] The wireless charging module bar stool 13 and the smart interactive desktop 14 are both in communication connection with the AI intelligent system 10, so as to transmit corresponding information to the AI intelligent system 10 for analysis, and the AI intelligent system 10 issues instructions to adjust the temperature adaptively and carries on a dialogue with the visitors.

[0058] Further, as shown in the accompanying drawings, Figure 2 The integrated temperature sensor 16 includes a data preprocessing unit, and the data preprocessing unit includes: a temperature monitoring data sequence obtaining subunit 30, configured to obtain temperature monitoring data collected by the integrated temperature sensor 16 in a preset monitoring window, and obtain a temperature monitoring data sequence; a cleaning temperature monitoring data sequence obtaining subunit 31, configured to clean and denoise the temperature monitoring data sequence, and obtain a cleaned temperature monitoring data sequence; an enhanced temperature monitoring data obtaining subunit 32, configured to perform feature convolution enhancement on the cleaned temperature monitoring data sequence, and obtain enhanced temperature monitoring data; and a data uploading subunit 33, configured to upload the enhanced temperature monitoring data to the AI intelligent system 10.

[0059] Specifically, the integrated temperature sensor 16 is a sensor embedded in a device, which can monitor the temperature change of the environment or the device in real time, and includes a data preprocessing unit, including a temperature monitoring data sequence obtaining subunit 30, a cleaning temperature monitoring data sequence obtaining subunit 31, an enhanced temperature monitoring data obtaining subunit 32, and a data uploading subunit 33. The temperature monitoring data sequence obtaining subunit 30 is responsible for obtaining temperature data in a preset monitoring window (such as every hour) from the integrated temperature sensor 16. Usually, a monitoring window is preset for temperature monitoring, and the temperature data in the monitoring window is collected by the integrated temperature sensor 16. The collection time stamp is recorded each time, and a temperature monitoring data sequence is obtained, which is stored in the form of time sequence, reflecting the trend of temperature change.

[0060] The cleaning temperature monitoring data sequence obtaining subunit 31 is responsible for cleaning and denoising the temperature monitoring data sequence. Data cleaning includes deleting invalid data, correcting incorrect temperature readings, etc. Denoising operation usually uses a filter to eliminate random noise caused by sensor errors or environmental interference, which helps to ensure that the data transmitted to the system is more accurate. For example, the integrated temperature sensor 16 misreads at a certain time, resulting in a sudden increase or decrease in temperature data. The cleaning temperature monitoring data sequence obtaining subunit 31 will identify this abnormal data point and remove it, ensuring that only normal temperature data is transmitted.

[0061] The enhanced temperature monitoring data obtaining subunit 32 uses a convolution algorithm to enhance the features of the cleaned data, extract important patterns in the data, enhance the effective features of the data, and reduce the interference of invalid information. Through convolution operation, the trend and periodicity of temperature change are captured, and the periodicity of temperature change is identified. Feature convolution enhancement refers to extracting and enhancing the potential key features in the data through convolution operation to obtain enhanced temperature monitoring data.

[0062] The data uploading subunit 33 uploads the enhanced temperature monitoring data to the AI intelligent system 10, and the AI intelligent system 10 can further analyze and adjust according to these data, judge whether the current temperature needs to be adjusted, whether to warm up or cool down, for example, adjust the temperature of the seat or optimize the running state of the equipment.

[0063] Further, the enhanced temperature monitoring data obtaining subunit 32 includes: a multi-scale data feature set obtaining micro-unit, configured to perform multi-scale convolution on the cleaned temperature monitoring data sequence to obtain a multi-scale data feature set; a fused data feature obtaining micro-unit, configured to perform feature interaction fusion on the multi-scale data feature set to obtain a fused data feature; and a convolution analysis micro-unit, configured to perform convolution analysis on the fused data feature and the last cleaned temperature monitoring data in the cleaned temperature monitoring data sequence to obtain the enhanced temperature monitoring data.

[0064] Further, the fusion data feature obtaining micro-unit comprises: a second multi-scale data feature obtaining micro-unit, configured to randomly and without replacement obtain a first multi-scale data feature and a second multi-scale data feature from the multi-scale data feature set; a feature similarity set determining micro-unit, configured to perform feature similarity comparison on the first multi-scale data feature and the second multi-scale data feature to determine a feature similarity set; a first interactive fusion data feature obtaining micro-unit, configured to normalize the feature similarity set and fill the normalized feature similarity set into an initially empty matrix to obtain a first interactive fusion matrix, and perform convolution operation on the first interactive fusion matrix and the second multi-scale data feature to obtain a first interactive fusion data feature; and a fusion data feature obtaining micro-unit, configured to again randomly and without replacement obtain a third multi-scale data feature from the multi-scale data feature set, perform feature fusion on the third multi-scale data feature and the first interactive fusion data feature to obtain a second interactive fusion data feature, and perform multiple times of fusion until all multi-scale data features in the multi-scale data feature set are analyzed to obtain the fusion data feature.

[0065] Specifically, multi-scale convolution is performed on the cleaning temperature monitoring data sequence, different sizes of convolution kernels (filters) are used in the convolutional neural network, so as to extract features of the data from different scales (or time windows), and capture details of different levels in the data, such as long-term change trend and short-term detail fluctuation, to obtain a multi-scale data feature set. For example, a larger convolution kernel can extract temperature trend in a long time, and a smaller convolution kernel can capture temperature fluctuation in a short time. In the temperature monitoring data, the long-time scale may reflect seasonal temperature difference change, and the short-time scale may be related to instantaneous climate change. Through multi-scale convolution, the model can simultaneously extract meaningful features from these different scales.

[0066] In the multi-scale data feature set obtained by multi-scale convolution, each feature map represents a different aspect of temperature data. In order to make these information interact, feature interactive fusion is performed to combine data features of different scales by weighted average, splicing or other fusion strategies.

[0067] The first multi-scale data feature and the second multi-scale data feature are randomly and without replacement extracted from the multi-scale data feature set, i.e., the feature data set at different scales, which describes the changes of temperature monitoring data at different scales. Random and without replacement means that the selected data item is no longer returned for the next selection after selection, ensuring that each data item appears only once in a sample. The first multi-scale data feature and the second multi-scale data feature are compared for feature similarity, and the similarity between the two data features is calculated to identify similar patterns or data trends, including cosine similarity (evaluating the similarity of feature vector direction) and Euclidean distance (measuring the geometric difference between features). Specifically, feature vectors are extracted from the first multi-scale data feature and the second multi-scale data feature, and compared using a similarity calculation method. Assuming that each feature can be represented as a vector, the similarity of two vectors in angle is calculated by cosine similarity. For example, assume that the first multi-scale data feature data is: [22, 23, 24, 22, 21], and the second multi-scale data feature data is: [21, 22, 22, 21, 20]. Using the cosine similarity formula, the similarity of the two features is calculated. If their temperature fluctuation trends are similar, the cosine similarity value will be close to 1, indicating that the similarity between them is high. By calculating the similarity of each pair of features, a feature similarity set is obtained.

[0068] The feature similarity set normalization process converts all values in the feature similarity set to a standard range (usually [0, 1]). The purpose of normalization is to eliminate the differences in different feature similarity scales, so that the similarity between different data sources can be compared under a unified standard. For example, if some values in the similarity set are (0.2, 0.8, 1.2, 0.6), after normalization they become (0.0, 0.6, 1.0, 0.4), so that the similarity values are within a unified standard range. Fill the normalized data into a matrix to construct the first interactive fusion matrix, where each row and each column of the matrix represents a feature, and each element in the matrix represents the similarity or relevance between different features.

[0069] The normalized feature similarity set is filled into an initially empty matrix to obtain a first interaction fusion matrix representing the interaction between different features. The first interaction fusion matrix and the second multi-scale data feature are subjected to convolution operation to extract relevant features of the data. The convolution kernel can be a small matrix (such as 3x3 or 5x5) that slides over the entire data matrix to perform local weighted summation operation. The second multi-scale data feature can contain different scale data of temperature variation, which can enhance the recognition of temperature patterns, trends, etc. after convolution operation with the first interaction fusion matrix. By filling the normalized features into an empty matrix, the feature values are calculated at the same scale to avoid data deviation caused by scale difference.

[0070] Random sampling without replacement is performed again to select the third multi-scale data feature, which is further fused with the first interaction fusion data feature to repeat the previous steps. Through multiple feature fusion, different scale features are combined and fused with existing fusion data features to form a more complex feature set until all features in the multi-scale data feature set are analyzed and fused. After multiple rounds of iterative fusion, all multi-scale data features are integrated together to form the final fusion data feature, which contains information on temperature, humidity, time, etc. and extracts deeper patterns through the feature fusion process.

[0071] The fusion data feature and the last cleaning temperature monitoring data are subjected to convolution analysis, and a convolution kernel (usually a fixed mathematical weight matrix) is used to calculate the two data features to extract their joint features and patterns. That is, the fusion data feature and the last cleaning temperature monitoring data are sequentially input into the convolution kernel for step-by-step calculation to obtain a new data sequence representing the temperature features extracted after convolution analysis. After completing the convolution operation, an enhanced temperature monitoring data is obtained, which contains deeper temperature information reflecting the relationship between data features. Through multi-scale convolution and feature fusion, deeper patterns and trends can be extracted, greatly enhancing the expression ability of temperature monitoring data.

[0072] In summary, the naked eye 3D popular science and intelligent guide corridor frame provided by the present application has the following beneficial effects:

[0073] Through the naked eye 3D display screen, the naked eye 3D display screen is used for perceiving user behavior and realizing interaction; the top plate is parallel to the ground, and two sides of the top plate are connected with the naked eye 3D display screen and the logo respectively, and is used for covering the top area; the logo is arranged on one side of the top plate, and is parallel to the naked eye 3D display screen, and is used for identifying and beautifying the gallery frame; the decorative wall is in the same plane with the logo, and is apart from the first preset distance, and the built-in LED light bar is used for light effect switching; the paving surface is paved on the ground, is composed of ground light-transmitting concrete, and is provided with the intelligent lamp strip; the rest area is a composite function area for providing rest, interaction and charging services for visitors. That is, through the interaction function of the naked eye 3D display screen, the visitors can interact with the display content, the rest area provides a variety of services, meets the rest, interaction and charging needs of the visitors, meets the various needs of the visitors, and improves the overall tour quality and satisfaction.

[0074] The above description of disclosed embodiments enables one skilled in the art to make or use the application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the generic principles defined herein can be applied to other embodiments without departing from the spirit or scope of the application. Thus, the present application is not intended to be limited to the embodiments shown herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

[0075] Obviously, for those skilled in the art, some improvements and modifications can be made to the present application without departing from the principles of the present application, and these improvements and modifications also fall within the protection scope of the present application.

Claims

1. A naked-eye 3D science popularization and smart guided tour corridor, characterized in that: include: A glasses-free 3D display screen, which is used to sense user behavior and enable interaction; A top plate, which is parallel to the ground, and whose two sides are respectively connected to the naked-eye 3D display screen and the logo, for covering the top area; Logo, which is located on one side of the top panel and parallel to the naked-eye 3D display screen, is used to identify and beautify the pergola; The decorative wall is on the same plane as the logo and is a first preset distance apart, and has built-in LED light strips for switching light effects; The paving surface, which is laid on the ground, is made of translucent concrete and is equipped with smart light strips; The rest area is a multi-functional area that provides visitors with rest, interaction and charging services; The rest area includes: A wireless charging module bench, which is connected to an AI intelligent system to adaptively adjust the surface temperature of the seat for visitors; The intelligent interactive desktop is connected to an AI intelligent system for dialogue and interaction with visitors. The wireless charging module-shaped bench includes: The intelligent temperature control system is used to receive control commands from the AI ​​intelligent system to adjust the seat temperature. An integrated temperature sensor is used to collect the temperature of the seat and upload the collected data to the AI ​​intelligent system. The integrated temperature sensor includes a data preprocessing unit, which includes: The temperature monitoring data sequence acquisition subunit is used to acquire temperature monitoring data collected by the integrated temperature sensor within a preset monitoring window, and to obtain a temperature monitoring data sequence. A cleaning temperature monitoring data sequence acquisition subunit is used to clean and denoise the temperature monitoring data sequence to obtain a cleaning temperature monitoring data sequence. An enhanced temperature monitoring data acquisition subunit is used to perform feature convolution enhancement on the cleaning temperature monitoring data sequence to obtain enhanced temperature monitoring data. The data uploading subunit is used to upload the enhanced temperature monitoring data to the AI ​​intelligent system.

2. The naked-eye 3D science popularization and smart guide corridor as described in claim 1, characterized in that, The material of the naked-eye 3D display screen is a photonic film.

3. The naked-eye 3D science popularization and smart guide corridor as described in claim 1, characterized in that, The glasses-free 3D display screen includes: The pressure sensing module collects information on changes in foot pressure and body contact signals from visitors in front of the naked-eye 3D display screen, and uploads this information to the display optimization unit for interface display optimization. The motion capture system tracks and identifies the postures of visitors using a visual recognition component and uploads the data to the display optimization unit for interface response.

4. The naked-eye 3D science popularization and smart guide corridor as described in claim 1, characterized in that, The top panel has built-in dot-matrix lighting strips.

5. The naked-eye 3D science popularization and smart guide corridor as described in claim 1, characterized in that, The smart interactive desktop includes a Bluetooth speaker, which is used for conversations and music playback.

6. The naked-eye 3D science popularization and smart guide corridor as described in claim 1, characterized in that, The enhanced temperature monitoring data acquisition subunit includes: A multi-scale data feature set is used to obtain micro-units, which are then used to perform multi-scale convolution on the cleaning temperature monitoring data sequence to obtain a multi-scale data feature set. Micro-units are obtained by fusing data features, which are used to perform feature interaction fusion on the multi-scale data feature set to obtain fused data features; A convolutional analysis micro-unit is used to perform convolutional analysis on the fused data features and the last cleaning temperature monitoring data in the cleaning temperature monitoring data sequence to obtain the enhanced temperature monitoring data.

7. The naked-eye 3D science popularization and smart guide corridor as described in claim 6, characterized in that, The micro-units obtained from the fused data features include: The second multi-scale data feature acquisition nano-unit is used to randomly and without replacement acquire the first multi-scale data feature and the second multi-scale data feature from the multi-scale data feature set. The feature similarity set determination unit is used to compare the first multi-scale data features and the second multi-scale data features to determine the feature similarity set. The first interactive fusion data feature obtaining nano-unit is used to normalize the feature similarity set and fill it into an initially empty matrix to obtain the first interactive fusion matrix. The first interactive fusion matrix is ​​then convolved with the second multi-scale data feature to obtain the first interactive fusion data feature. A nano-unit is obtained by fusing data features, which is used to randomly and without replacement obtain a third multi-scale data feature from the multi-scale data feature set. The third multi-scale data feature is then fused with the first interactive fused data feature to obtain a second interactive fused data feature. This process is repeated multiple times until all multi-scale data features in the multi-scale data feature set have been analyzed, and the fused data feature is obtained.

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