Split type artificial intelligence glasses

By using a split design for the neckband-style main unit and the glasses' functional components, the problems of traditional AI glasses being heavy and lacking universality are solved, achieving greater wearing comfort and user adaptability.

CN121784975APending Publication Date: 2026-04-03BEIJING HUAQING RUIZHI TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-05
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Traditional AI glasses adopt an integrated design, which is heavy and uncomfortable to wear. It is difficult to provide differentiated designs for different users, resulting in poor universality and difficulty in promotion.

Method used

Adopting a split design, the neckband main unit and the glasses functional components are connected via a micro cable. The neckband main unit is powered and sends data acquisition commands, while the glasses functional components collect and transmit the sensed data. The main unit performs artificial intelligence analysis or transmits the data to an external terminal. The functional components can be detachably installed on the temples of the glasses to fit ordinary glasses of different users.

Benefits of technology

It significantly reduces the weight of AI glasses, improves wearing comfort and user adaptability, solves the problem that traditional designs cannot accommodate different user face shapes and preferences, and improves design flexibility and universality.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121784975A_ABST
    Figure CN121784975A_ABST
Patent Text Reader

Abstract

The invention relates to split type artificial intelligence glasses which comprise a neck hanging type host and a glasses function assembly which are connected through a micro cable, and the glasses function assembly is detachably installed on glasses legs; the neck hanging type host is used for supplying power to the glasses function assembly and sending a data acquisition instruction to the glasses function assembly through the micro cable after receiving the interaction instruction; the glasses function assembly is used for responding to the data acquisition instruction, acquiring sensing data and transmitting the sensing data to the neck-hung host through the micro cable; and the neck-hung host is also used for carrying out artificial intelligence analysis processing on the sensing data. The weight concentrated on the glasses in the traditional integrated scheme is transferred to the shoulder and neck part with higher bearing capacity, so that the comfort degree of long-term wearing is obviously improved; meanwhile, common glasses of different users can be adapted to be installed and used, the problem that face shapes, vision conditions and personal preferences of different users are difficult to consider in traditional integrated design is solved, and user suitability and design flexibility are improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of wearable device technology, and in particular to a split-type artificial intelligence glasses. Background Technology

[0002] With the development of AI (Artificial Intelligence), smart wearable devices are becoming increasingly diverse. For example, AI glasses can perceive their environment through built-in cameras, sensors, and other modules, thereby enabling functions such as information processing, voice interaction, visual recognition, or augmented reality display.

[0003] However, traditional AI glasses typically adopt an integrated solution, combining all electronic components into the frame and temples. This not only results in a large overall weight and poor wearing comfort, but also makes it difficult to provide differentiated designs for different users. Consequently, AI glasses have poor universality and are difficult to promote and popularize. Summary of the Invention

[0004] Therefore, it is necessary to provide a split-type AI glasses solution to address the aforementioned technical issues and improve the universality of AI glasses.

[0005] In a first aspect, this application provides a split-type artificial intelligence glasses, including a neckband-style main unit and glasses functional components connected via a micro-cable, wherein: The eyeglass functional components are detachably mounted on the temples of the eyeglasses; The neckband host is used to power the glasses' functional components and, upon receiving an interaction command, sends a data acquisition command to the glasses' functional components via the micro-cable. The glasses functional component is used to collect sensing data in response to the data acquisition command, and transmit the sensing data to the neckband host via the micro cable; The neck-mounted host is also used to perform artificial intelligence analysis on the sensed data, and / or to transmit the sensed data to an external mobile terminal.

[0006] In one embodiment, the glasses functional components include a first functional unit and a second functional unit; The miniature cable electrically connects the neckband host to the first functional unit; the second functional unit is electrically connected to the first functional unit via a flexible wire or contact. The first functional unit adopts an elastic clamping part or an ear-hook structure; The second functional unit is detachably mounted on the temple of the glasses.

[0007] In one embodiment, the first functional unit integrates an audio component and / or a signal relay component.

[0008] In one embodiment, the second functional unit includes a magnetic structure and a functional module. The magnetic structure is detachably mounted on the temple of the glasses, and the functional module is detachably mounted and electrically connected to the magnetic structure.

[0009] In one embodiment, the magnetic attraction structure includes a permanent magnet and metal contacts; The functional module is attracted and connected to the magnetic structure by the permanent magnet under the action of external thrust, so that the functional module establishes an electrical connection with the magnetic structure through the metal contact.

[0010] In one embodiment, the functional module includes one or more of the following: an interchangeable image acquisition module, a bone conduction audio module, a directional sound speaker module, and a microphone array module.

[0011] In one embodiment, the neck-mounted main unit includes a frame, a flexible shell, and internal components; The skeleton is made of an elastic support material with shape memory properties; The flexible shell covers the outside of the skeleton and has a fitting part that conforms to the contour of the human neck. The internal components are installed within the receiving space formed by the skeleton and the flexible shell.

[0012] In one embodiment, the internal components include an electrically connected battery, a processor, and a charging circuit; The charging circuit is used to connect to an external power source to charge the battery through the external power source; The battery powers the processor and, via the microcable, the glasses' functional components.

[0013] In one embodiment, the internal components further include a wireless communication module electrically connected to the processor; The wireless communication module is used for data interaction with external devices.

[0014] In one embodiment, the neckband host is provided with an interactive component for generating the interactive commands; The interactive components are physical buttons or sensors located on the neckband host.

[0015] The aforementioned split-type AI glasses, through the separate design of the neckband-style main unit and the glasses' functional components, transfer the weight concentrated on the glasses in traditional all-in-one solutions to the more load-bearing shoulders and neck. This significantly reduces the weight and load of the AI ​​glasses themselves, substantially improving long-term wearing comfort. Simultaneously, the detachable design of the glasses' functional components, mounted on the temples, allows for installation on ordinary glasses of different users, solving the problem of traditional all-in-one designs failing to accommodate different face shapes, vision conditions, and personal preferences, thus improving the user adaptability and design flexibility of the AI ​​glasses. Furthermore, by separating the glasses' functional components into a first functional unit with an ear-hook structure and a second functional unit mounted on the temples, the weight of the temples can be distributed using the auricle, further balancing the weight distribution between the front and back of the glasses. This avoids problems such as pressure on the bridge of the nose or glasses slipping due to excessive weight at the front, significantly improving the ergonomic experience. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of this application or related technologies, the drawings used in the description of the embodiments of this application or related technologies will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 This is a schematic diagram of the structure of a split-type artificial intelligence glasses in one embodiment; Figure 2 This is a schematic diagram of the magnetic structure in a split-type artificial intelligence glasses embodiment; Figure 3 This is a schematic diagram of wearing split-type artificial intelligence glasses in one embodiment. Detailed Implementation

[0018] To make the above-mentioned objectives, features, and advantages of this application more apparent and understandable, the specific embodiments of this application are described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a thorough understanding of this application. However, this application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this application. Therefore, this application is not limited to the specific embodiments disclosed below.

[0019] In the description of this application, it should be understood that if terms such as "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" appear, these terms indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.

[0020] Furthermore, where the terms "first" and "second" appear, these terms are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined with "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, where the term "multiple" appears, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0021] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0022] In this application, unless otherwise expressly specified and limited, the use of descriptions such as "above" or "below" the second feature indicates that the first and second features are in direct contact or indirect contact via an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. Similarly, "below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0023] It should be noted that if an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or there may be an intervening element. If an element is considered to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. If so, the terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used in this application are for illustrative purposes only and do not represent the only possible implementation.

[0024] AI glasses can perceive their environment through built-in cameras, sensors, and other modules, enabling functions such as information processing, voice interaction, visual recognition, and augmented reality display. However, traditional AI glasses typically adopt an integrated design, incorporating all electronic components into the frame and temples. This not only results in a heavy overall weight and poor wearing comfort but also makes it difficult to provide differentiated designs for different users, leading to poor universality and hindering the promotion and popularization of AI glasses.

[0025] Based on this, in an exemplary embodiment, this application provides a split-type artificial intelligence glasses, such as... Figure 1 As shown, the split-type artificial intelligence glasses include a neckband host (100) and glasses functional components (600) connected via a micro-cable (500), wherein: The eyeglass functional components (600) are detachably mounted on the temples of the eyeglasses; The neckband host (100) is used to power the glasses functional component (600) and, upon receiving an interactive command, sends a data acquisition command to the glasses functional component (600) via a micro cable (500); The glasses functional component (600) is used to collect sensing data in response to a data acquisition command and transmit the sensing data to the neckband host (100) via a micro cable (500). The neckband host (100) is also used for artificial intelligence analysis of the sensed data and / or for transmitting the sensed data to an external mobile terminal.

[0026] In other words, the split-type artificial intelligence glasses provided in this application embodiment adopt a structural design in which the neck-mounted host (100) and the glasses functional components (600) are separated, and the two are physically connected and transmit data and power through a micro cable (500).

[0027] The eyeglasses functional component (600) is installed on the temple of the eyeglasses in a detachable manner, so that the eyeglasses functional component (600) can be adapted to different types of ordinary eyeglasses, and realize the universal integration of the eyeglasses functional component (600) with the ordinary eyeglasses worn by the user.

[0028] For example, the installation method of the eyeglass functional component (600) can be elastic clamping installation, that is, the eyeglass functional component (600) itself is made of highly elastic material, and the user applies a slight external force to expand its opening. After it is put into the temple, the material's own elastic recovery force generates a continuous radial clamping force, thereby achieving a stable attachment; or, it can be snap-on installation, where the user presses the snap-on structure of the eyeglass functional component (600) to lock it; in addition, it can be adhesive installation, using a washable and re-adhesive nano-adhesive pad or similar adhesive material to adhere the eyeglass functional component (600) to the surface of the temple; etc., this application does not specifically limit this.

[0029] The neckband-style main unit (100) establishes a physical and electrical connection with the glasses' functional components (600) via a micro-cable (500), thereby transferring heavier units such as the battery and processor from the ears and bridge of the nose to the more load-bearing shoulders and neck. This even support from the neck significantly reduces the load on the glasses, thus ensuring comfort during extended wear from a physical standpoint. Furthermore, the wired connection via the micro-cable (500) ensures the stability and reliability of data and power transmission.

[0030] Among them, the miniature cable (500) can achieve electrical connection with the neckband host (100) and the glasses functional components (600) through a miniature coaxial connector, a Pogo Pin (spring pin) magnetic structure (400) or a USB (Universal Serial Bus) connector. Its communication protocol can support USB, Type-C interface protocol, I²C (Inter-Integrated Circuit), SPI (Serial Peripheral Interface), UART (Universal Asynchronous Receiver / Transmitter) and other protocols, without being limited to any specific protocol.

[0031] In actual use, the user can install the glasses functional component (600) on the temple of their ordinary glasses and wear the neckband host (100) at the same time, so that the neckband host (100) can power the glasses functional component (600) through the micro cable (500). When the neckband host (100) receives the interaction command, it can send a data acquisition command to the glasses functional component (600) through the micro cable (500). After receiving the data acquisition command, the glasses functional component (600) immediately activates its own perception function, collects relevant information of the surrounding environment, forms corresponding perception data, and transmits the collected perception data back to the neckband host (100) through the micro cable (500). After receiving the perception data, the neckband host (100) can perform artificial intelligence analysis and processing on the perception data to realize corresponding intelligent functions such as environmental recognition and information interaction; or, the perception data can be transmitted to an external mobile terminal, and the mobile terminal can perform further artificial intelligence analysis and processing on the perception data. This application embodiment does not specifically limit this.

[0032] As can be seen from the above, the solution provided in this application, through the separate design of the neckband host (100) and the glasses functional component (600), transfers the weight concentrated on the glasses in the traditional integrated solution to the shoulder and neck with stronger load-bearing capacity, thereby significantly reducing the weight and load of the AI ​​glasses body and significantly improving the comfort of long-term wear; at the same time, the design of the glasses functional component (600) being detachably installed on the temple of the glasses can be adapted to the installation and use of ordinary glasses of different users, solving the problem that the traditional integrated design is difficult to take into account the different face shapes, vision conditions and personal preferences of different users, and improving the user adaptability and design flexibility of AI glasses.

[0033] In an exemplary embodiment, the glasses functional component (600) includes a first functional unit (200) and a second functional unit (700). A miniature cable (500) electrically connects the neckband host (100) to the first functional unit (200); the second functional unit (700) is electrically connected to the first functional unit (200) via a flexible wire or contact. The first functional unit (200) adopts an elastic clamping part or an ear-hook structure; The second functional unit (700) is detachably mounted on the temple of the eyeglasses.

[0034] In other words, the eyeglasses functional components (600) adopt a distributed architecture, including a first functional unit (200) and a second functional unit (700). The first functional unit (200) is constructed as an elastic clamping part or ear-hook structure adapted to the ear bend of the temple, utilizing the deformation properties of elastic materials or the natural support of the auricle to provide a fixed fit. The second functional unit (700) is detachably mounted on the temple and can realize functions such as a camera. A micro-cable (500) electrically connects the first functional unit (200) to the neckband host (100); the first functional unit (200) is then electrically connected to the second functional unit (700) via a flexible wire.

[0035] In one implementation, the first functional unit (200) integrates an audio component and / or a signal relay component.

[0036] Specifically, the audio component can be selected from forms such as built-in miniature speakers, bone conduction sound units, or in-ear audio interfaces according to the product interaction requirements. The circuit module of the component needs to be integrated with the power supply line inside the first functional unit (200). When the neckband host (100) completes artificial intelligence analysis or receives audio data transmitted from external mobile terminals (such as voice command feedback, navigation prompts, etc.), it can transmit the audio signal to the audio component of the first functional unit (200) through a miniature cable (500). The audio component completes the signal conversion and outputs it to the user in an adapted manner. At the same time, if the audio component integrates a microphone module, it can also collect user voice interaction data in real time and feed it back to the neckband host (100) for subsequent processing through the same transmission link.

[0037] The signal relay component can ensure the stability and integrity of signal transmission between the first functional unit (200), the second functional unit (700), and the neck-mounted host (100), and is especially suitable for scenarios where the second functional unit (700) and the first functional unit (200) are connected by flexible wires or contacts. The signal relay component can adopt an integrated design of miniaturized signal amplification module and anti-interference filtering module, and be connected in series in the signal transmission link between the neck-mounted host (100) and the second functional unit (700). When the neck-mounted host (100) sends a data acquisition command to the second functional unit (700) through the micro cable (500), the command signal is strengthened and anti-interference processed by the signal relay component of the first functional unit (200), and then transmitted to the second functional unit (700) through a flexible wire or contact point to ensure the accuracy of command transmission. Similarly, the sensing data collected by the second functional unit (700) can also be transmitted to the first functional unit (200), optimized by the signal relay component, and then transmitted to the neck-mounted host (100) through the micro cable (500), effectively reducing the signal attenuation and interference problems caused by long-distance transmission or contact connection.

[0038] In one implementation, the second functional unit (700) includes a magnetic structure (400) and a functional module (300). The magnetic structure (400) is detachably mounted on the temple of the glasses, and the functional module (300) is detachably mounted and electrically connected to the magnetic structure.

[0039] In this exemplary embodiment, the second functional unit (700) may include a magnetic structure (400) and a functional module (300), which can be used together to achieve the fitting and installation of the glasses and to work in coordination with the neckband host (100) and the first functional unit (200).

[0040] Specifically, one end of the flexible conductor establishes a stable electrical connection with the magnetic structure (400), while the other end is connected to the first functional unit (200), forming a power transmission path and data interaction link from the first functional unit (200) to the magnetic structure (400), providing a basic guarantee for the operation of subsequent functional modules (300).

[0041] The magnetic structure (400) is assembled onto the temple of the eyeglasses using a detachable mounting structure, which can flexibly adapt to ordinary eyeglass temples of different thicknesses and cross-sectional shapes without requiring modification to the eyeglasses themselves, greatly improving the versatility of the device. For example, the magnetic structure (400) can be installed and fixed at the front of the temple using any of the aforementioned elastic clamping, snap-on, or adhesive mounting methods.

[0042] The functional modules (300) are mounted on the magnetic structure (400) in a detachable and synchronously electrically connected manner, which makes it convenient for users to replace different types of functional modules (300) according to actual usage needs without changing any wiring of the glasses functional components (600) or the neckband host (100), thereby improving the configurability and upgrade potential of the split-type artificial intelligence glasses.

[0043] For example, the magnetic structure (400) can be installed on the temple of the glasses using either a magnetic or snap-on method. A miniature magnetic patch or slot can be provided at the front of the temple, or the magnetic structure (400) can have its own elastic clamping structure to be directly fixed to the front of the temple.

[0044] Alternatively, a snap-on installation can be used, with a slot with internal metal contacts designed at the front of the temple (or on the front mounting interface), and a corresponding snap-on plug designed on the magnetic structure (400), with contacts integrated on the plug. The user slides the magnetic structure (400) into the slot in a specific direction, and at the same time, the contacts on the plug and the contacts in the slide rail are also connected.

[0045] Alternatively, screw-on or press-on installation can be used, but this application does not specifically limit the method of installation.

[0046] The functional module (300) can achieve power supply and data transmission with the neck-mounted host (100) through cooperation with the magnetic structure (400), ensuring that the sensing data collected by the functional module (300) can be transmitted back to the host for processing, and the control commands of the host can also be accurately sent to the functional module (300), ensuring the stability and flexibility of the entire system operation.

[0047] In one implementation, the magnetic structure (400) can be installed on the temple of the eyeglasses by means of an elastic clamping sleeve. The elastic clamping sleeve is used to detachably clamp the outer side of the temple of the eyeglasses by means of radial elastic deformation, and the inner wall of the sleeve is provided with anti-slip texture.

[0048] In this implementation, the magnetic structure (400) specifically adopts the structure of an elastic clamping sleeve, which uses its own elastic properties to achieve a stable assembly and flexible disassembly with the temple of the eyeglasses.

[0049] Specifically, the elastic clamping sleeve is a C-shaped or nearly annular sleeve with a longitudinal opening. When installation is required, the temple can be aligned with the opening of the sleeve, and external force is applied to cause radial elastic deformation of the clamping sleeve, thereby expanding its internal clamping space so that it can be smoothly fitted onto the outside of the temple. After the external force is removed, the elastic clamping sleeve contracts due to its own elastic restoring force, forming a uniform clamping force on the temple radially, thereby achieving a tight fit and fixation with the temple.

[0050] This method of clamping by relying on radial elastic deformation not only eliminates the need for any modifications such as drilling or pasting on the temples, effectively protecting the integrity of the user's original glasses, but also adapts to temples of different thicknesses, greatly improving the compatibility of the magnetic structure (400) with various ordinary glasses. At the same time, the disassembly process is simple and convenient; it can be removed by simply applying a reverse external force to cause the elastic clamping sleeve to deform radially again, thus balancing the stability of assembly with the flexibility of use.

[0051] The elastic clamping sleeve is made of high-molecular elastic materials such as liquid silicone and thermoplastic polyurethane. These elastic materials are not only soft and skin-friendly, but also provide excellent elastic deformation and recovery performance, ensuring that the clamping force is durable and does not damage the surface of the temple, thus ensuring the stability after assembly.

[0052] Meanwhile, to further improve the clamping effect and prevent the elastic clamping sleeve from sliding relative to the temples of the glasses due to head movements or external force during use, an anti-slip texture is specially designed on the inner wall of the sleeve. The anti-slip texture can be a uniformly distributed array of fine bumps, a continuous wavy groove, or an interlaced grid-like ridge, etc., and there are no specific limitations.

[0053] The anti-slip texture increases the friction between the inner wall of the sleeve and the outer surface of the temple, effectively suppressing the relative displacement between them. Even in dynamic scenarios such as daily walking and turning the head, it can ensure that the elastic clamping sleeve remains stable, further optimizing the reliability and compatibility of the entire device.

[0054] In one implementation, such as Figure 2 As shown, the magnetic attraction structure (400) of the second functional unit (700) is provided with a permanent magnet and metal contacts; Under external thrust, the functional module (300) is attached to a preset position on the front of the temple of the glasses or to an independent clamp by magnetic structure (400), and is connected to the circuit of the neck-mounted host (100) by the lead wire contacts.

[0055] In this implementation, the front mounting position of the temple of the glasses is provided with a magnetic structure (400). The magnetic structure (400) integrates a permanent magnet and a metal contact. The two work together to realize the rapid assembly and electrical connection of the functional module (300).

[0056] Specifically, when a user needs to install the functional module (300), a slight external force can be applied to the functional module (300) to move it toward the magnetic structure (400) at the front of the temple. Under the magnetic force of the permanent magnet, the functional module (300) will quickly attract and position itself to the magnetic structure (400) at the front of the temple, and the initial fixation can be completed without complicated alignment operations.

[0057] At the same time, as the functional module (300) and the magnetic structure (400) adhere to each other, the corresponding contact end on the functional module (300) will precisely connect with the metal contact in the magnetic structure (400), thereby quickly establishing an electrical connection path between the functional module (300) and the magnetic structure (400). The metal contact can be a wear-resistant, highly conductive gold-plated spring or a Pogo Pin.

[0058] In this way, mechanical fixation and electrical connection can be integrated into one, which not only simplifies the installation process of the functional module (300) and improves the user's ease of operation, but also ensures the stability after connection, ensuring that the power supply from the neck-mounted host (100) to the front-end second functional unit (700) via the rear first functional unit (200) is stable, and that the sensing data collected by the functional module (300) can be smoothly transmitted to the neck-mounted host (100).

[0059] In one implementation, the functional module (300) includes one or more interchangeable image acquisition modules, bone conduction audio modules, directional sound speaker modules, and microphone array modules.

[0060] In this implementation, the functional module (300) adopts an interchangeable modular design, and can be selected from one or more of the following: image acquisition module, bone conduction audio module, directional sound speaker module, and microphone array module, to adapt to the diverse usage needs of different users.

[0061] For example, when environmental visual perception is required, an image acquisition module can be installed, which uses a built-in miniature high-resolution camera and image sensor to capture static images or dynamic videos from a first-person perspective. When answering phone calls or listening to audio content, a bone conduction audio module or a directional speaker module can be installed. The bone conduction audio module transmits sound directly to the inner ear by vibrating the temporal bone, while the directional speaker module uses technologies such as ultrasound to focus the sound into a beam, allowing only users within a specific range directly in front to hear clearly, effectively reducing sound leakage. When voice interaction or environmental sound acquisition is required, a microphone array module can be installed, which uses multiple integrated miniature microphones to work together to achieve sound source localization, background noise reduction, and far-field sound pickup.

[0062] In another preferred embodiment, considering the computing power requirements of large artificial intelligence models such as LLM (Large Language Model) or visual large models, the neck-mounted host (100) can function as an edge gateway or data forwarding hub.

[0063] Specifically, the neckband host (100) can receive sensory data (such as images and audio) from the glasses functional components (600) via a micro-cable (500), preprocess it (such as encoding, compression, or noise reduction), and then transmit it to the user's smartphone or other external terminal device via a wireless communication module. An app running on the smartphone or a cloud algorithm performs deep artificial intelligence analysis on the sensory data and sends the analysis results (such as voice responses or translation results) back to the neckband host (100), which is then played back to the user via the audio function of the glasses functional components (600).

[0064] This "thin client" mode can significantly reduce the power consumption and heat generation of the neckband host (100), extend battery life, and at the same time utilize the powerful computing power of the mobile phone to realize more complex AI functions.

[0065] Since each functional module (300) follows a unified physical interface and electrical protocol, and is compatible with the unified installation and electrical connection structure of the front mounting position, the replacement process does not require any tools and can be completed by magnetic or clamping detachment. This reduces the user's operating threshold and eliminates the need to repeatedly purchase the host and the first functional unit (200). The application scenarios can be expanded simply by adding, subtracting or replacing functional modules (300), which significantly improves the practicality, flexibility and cost-effectiveness of the equipment and better meets the personalized intelligent needs of different users in multiple scenarios.

[0066] In an exemplary embodiment, the neck-mounted main unit (100) includes a frame, a flexible shell, and internal components; The skeleton is made of an elastic support material with shape memory properties; A flexible shell covers the outside of the skeleton and has a fitting part that conforms to the contour of the human neck. The internal components are housed within a containment space formed by the skeleton and flexible shell.

[0067] In this exemplary embodiment, the neckband host (100) adopts a structural design that combines bionics and materials science, taking into account wearing comfort, structural stability and functional integration.

[0068] The frame is made of an elastic support material with shape memory properties, such as a shape memory alloy or a specific high-elasticity polymer. This material property allows the frame to provide reliable structural support for the neckband main unit (100), preventing irreversible deformation of the neckband main unit (100) due to external pressure during wearing or storage. It can also be adaptively adjusted according to the neck contours of different users, maintaining a suitable shape after adjustment and improving the fit. Furthermore, the structure of the first functional unit (200) extends behind the ear to form an ear-hook support. This support integrates a bone conduction vibrator or a miniature speaker, utilizing the wearer's auricle for auxiliary support. This design makes the first functional unit (200) not only a fixed base but also a counterweight component balancing the center of gravity of the glasses.

[0069] The flexible shell tightly covers the outside of the frame and can be made of flexible materials such as liquid silicone. Its inner surface fits tightly with the frame, while the outer surface is provided with a fitting part that conforms to the contour of the human neck. This fitting part can accurately fit the physiological curves of the back and sides of the neck. Combined with the soft and skin-friendly properties of the flexible shell itself, it effectively reduces the friction and pressure between the neck-mounted main unit (100) and the neck skin, further optimizing the wearing experience.

[0070] The enclosure formed by the skeleton and flexible shell provides a stable mounting platform for the internal components. The internal components can be assembled in an orderly manner in this space, which not only effectively protects the electronic components and avoids damage to the components from external dust and collisions, but also makes the overall structure of the host compact, taking into account both functionality and portability.

[0071] In one implementation, the internal components include an electrically connected battery, a processor, and a charging circuit; The charging circuit is used to connect to an external power source to charge the battery. The battery powers the processor and the glasses functional components (600) via a micro-cable (500).

[0072] In this implementation, the internal components of the neckband host (100) include a battery, a processor, and a charging circuit that are electrically connected to each other.

[0073] Among them, the charging circuit plays a key role in energy replenishment. It can establish a connection with an external power source through interfaces such as Type-C, and stably transmit external power to the battery through preset charging management logic, so as to achieve safe charging of the battery and ensure that the device has continuous battery life.

[0074] The battery can be a lithium-ion battery, a lithium polymer battery, or a solid-state battery, which can provide stable power support for the normal operation of the processor. At the same time, it can transmit power to the glasses functional components (600) through a micro cable (500), providing energy guarantee for the sensory data acquisition, signal transmission and other operations of the functional module (300).

[0075] The processor can be a SoC chip to realize data processing, instruction interaction and other functions of the neckband host (100). For example, the processor can receive interaction instructions and send data acquisition instructions to the glasses functional components (600), as well as perform artificial intelligence analysis and processing on the perceived data.

[0076] In this way, the power supply and processing components can be integrated into the neckband host (100), which effectively reduces the load on the glasses and further improves the overall wearing comfort and the stability of the device operation.

[0077] In one implementation, the internal components further include a wireless communication module electrically connected to the processor; The wireless communication module is used to interact with external devices.

[0078] In this implementation, the internal components of the neck-mounted host (100) are further equipped with a wireless communication module that is electrically connected to the processor. The wireless communication module can realize bidirectional data transmission between the split-type artificial intelligence glasses and external devices such as smartphones, tablets, and computers based on wireless communication protocols such as Bluetooth and Wi-Fi.

[0079] Specifically, on the one hand, the sensory data acquired by the neck-mounted host (100) or the results after artificial intelligence analysis and processing can be synchronized to external devices, making it convenient for users to view information on a larger screen or to carry out subsequent data organization; on the other hand, it can receive control commands, update programs or data resources sent by external devices, so as to realize remote control, system upgrade and data supplementation of the split artificial intelligence glasses.

[0080] This expands the data flow path and application scenarios, while eliminating the need for wired connections. This not only improves ease of use but also makes the device's functionality more flexible, better adapting to users' needs in multi-device collaborative use scenarios.

[0081] In one exemplary embodiment, the neckband host (100) is provided with an interactive component for generating interactive instructions; The interactive components are physical buttons or sensors located on the neckband host (100).

[0082] In this exemplary embodiment, the neckband host (100) is equipped with an interactive component specifically for generating interactive instructions. This component specifically adopts physical buttons or sensors set on the surface of the host, providing users with an intuitive and convenient operation entry point.

[0083] Specifically, physical buttons can be configured as single buttons or multi-button combinations according to functional requirements. Users can trigger corresponding interactive commands through simple operations such as pressing or long-pressing. For example, pressing a button can start data acquisition of the functional module (300), switch functional modes, or terminate the current operation. Sensors can achieve contactless or more intelligent operation triggering. For example, touch sensors can detect the user's touch actions, and posture sensors can identify changes in the wearing posture of the host, thereby automatically generating interactive commands without requiring the user to press manually, improving the convenience and intelligent experience of operation.

[0084] The interactive instructions generated by the interactive components can be transmitted to the processor of the neckband host (100), and the processor will drive subsequent operations such as sending data acquisition instructions to the glasses functional components (600).

[0085] like Figure 3The image shown is a schematic diagram of wearing a preferred embodiment of this application. In this embodiment, the eyeglasses functional components (600) adopt a distributed serial design, including a neckband host (100), a first functional unit (200) worn on the auricle, and a second functional unit (700) installed on the front end of the temple of the eyeglasses. The second functional unit (700) realizes the corresponding function through a magnetically installed functional module (300).

[0086] The first functional unit (200) is constructed as an arc-shaped structure that fits the ear curve of the temple of the glasses. It integrates a bone conduction oscillator or speaker, as well as an interface circuit that connects to a micro-cable (500). This design utilizes the wearer's auricle to bear the main weight, shifting the center of gravity backward.

[0087] The functional module (300) is detachably mounted on the front side of the temple (near the temple) for acquiring first-view image information (as perceptual data).

[0088] In terms of connectivity, the miniature cable (500) is first connected to the neckband host (100), and then connected to the first functional unit (200) and the second functional unit (700) via a short wire or a conductive path pre-installed on the clamp sleeve. When using the device, the user must wear the neckband host (100) and the first functional unit (200) to obtain audio and power, but can freely remove the second functional unit (700) as needed (e.g., when privacy is required, the camera is not installed, and only the audio function is used).

[0089] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this application.

[0090] The embodiments described above are merely illustrative of several implementation methods of this application, and while the descriptions are specific and detailed, they should not be construed as limiting the scope of this patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this application should be determined by the appended claims.

Claims

1. A split-type artificial intelligence glasses, characterized in that, This includes a neckband-style main unit and eyeglass functional components connected via a micro-cable, wherein: The eyeglass functional components are detachably mounted on the temples of the eyeglasses; The neckband host is used to power the glasses' functional components and, upon receiving an interaction command, sends a data acquisition command to the glasses' functional components via the micro-cable. The glasses functional component is used to collect sensing data in response to the data acquisition command, and transmit the sensing data to the neckband host via the micro cable; The neck-mounted host is also used to perform artificial intelligence analysis on the sensed data, and / or to transmit the sensed data to an external mobile terminal.

2. The split-type artificial intelligence glasses according to claim 1, characterized in that, The glasses functional components include a first functional unit and a second functional unit; The miniature cable electrically connects the neckband host to the first functional unit; the second functional unit is electrically connected to the first functional unit via a flexible wire or contact. The first functional unit adopts an elastic clamping part or an ear-hook structure; The second functional unit is detachably mounted on the temple of the glasses.

3. The split-type artificial intelligence glasses according to claim 2, characterized in that, The first functional unit integrates an audio component and / or a signal relay component.

4. The split-type artificial intelligence glasses according to claim 2, characterized in that, The second functional unit includes a magnetic structure and a functional module. The magnetic structure is detachably mounted on the temple of the glasses, and the functional module is detachably mounted and electrically connected to the magnetic structure.

5. The split-type artificial intelligence glasses according to claim 4, characterized in that, The magnetic structure contains a permanent magnet and metal contacts. The functional module is attracted and connected to the magnetic structure by the permanent magnet under the action of external thrust, so that the functional module establishes an electrical connection with the magnetic structure through the metal contact.

6. The split-type artificial intelligence glasses according to claim 5, characterized in that, The functional modules include one or more interchangeable image acquisition modules, bone conduction audio modules, directional sound speaker modules, and microphone array modules.

7. The split-type artificial intelligence glasses according to claim 1, characterized in that, The neck-mounted main unit includes a frame, a flexible shell, and internal components; The skeleton is made of an elastic support material with shape memory properties; The flexible shell covers the outside of the skeleton and has a fitting part that conforms to the contour of the human neck. The internal components are installed within the receiving space formed by the skeleton and the flexible shell.

8. The split-type artificial intelligence glasses according to claim 7, characterized in that, The internal components include an electrically connected battery, processor, and charging circuitry. The charging circuit is used to connect to an external power source to charge the battery through the external power source; The battery powers the processor and, via the microcable, the glasses' functional components.

9. The split-type artificial intelligence glasses according to claim 8, characterized in that, The internal components also include a wireless communication module electrically connected to the processor; The wireless communication module is used for data interaction with external devices.

10. The split-type artificial intelligence glasses according to claim 1, characterized in that, The neck-mounted host is equipped with an interactive component for generating the interactive commands. The interactive components are physical buttons or sensors located on the neckband host.