Intelligent glasses

By incorporating a camera module and a near-eye display module into smart glasses, users can preview captured images in real time while wearing them, solving the problem that traditional smart glasses require removal for previewing and improving the user experience.

CN121069633APending Publication Date: 2025-12-05GEER TECH CO LTD
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Patent Information

Application Number
CN202511352194.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-19
Publication Date
2025-12-05

AI Technical Summary

Technical Problem

Users need to remove their smart glasses to preview the captured image when taking pictures, which affects the user experience.

Method used

A camera module is placed on the side of the smart glasses frame furthest from the user's eyes, and a near-eye display module is embedded on the side closest to the user's eyes. The image captured by the camera module is directly displayed through a micro-display, enabling the user to preview it in real time while wearing the glasses.

Benefits of technology

It eliminates the need to put on and take off glasses, simplifies user operation, improves the user experience of captured images, avoids data transmission delays from external devices, and is suitable for scenarios requiring two-handed operation, such as sports and industrial inspection.

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    Figure CN121069633A_ABST
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Abstract

The invention discloses intelligent glasses, and relates to the technical field of wearable equipment, the intelligent glasses comprise a glasses frame and two glasses legs connected with the glasses frame, and the intelligent glasses also comprise a camera module arranged on one side, far away from human eyes, of the glasses frame; the near-to-eye display module is at least partially embedded in the side, close to the human eyes, of the mirror frame, and a groove used for containing the near-to-eye display module is correspondingly formed in the side, close to the human eyes, of the mirror frame; the near-to-eye display module comprises a micro-display, and emergent light of the micro-display directly enters eyes; the micro-display is configured to receive and display an image output from the camera module. When the user wears the intelligent glasses to shoot the image, the user can preview the picture to be shot without taking off the glasses, the user can conveniently compose the picture, and the use experience of the user for shooting the image by using the intelligent glasses is improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of wearable devices, in particular to a kind of smart glasses. BACKGROUND

[0002] As a kind of wearable device, smart glasses can integrate camera on the basis of traditional vision correction or decoration function, to realize the function of shooting image.

[0003] At present, when user wears smart glasses and shoots image by the camera in smart glasses, if want to preview the picture of shooting, need to take off glasses to check mobile phone App, wait for image transmission to be completed to preview, it is inconvenient to operate, also affect the coherent use experience. SUMMARY

[0004] The main purpose of the present application is to propose a kind of smart glasses, to realize that user wears smart glasses to shoot image, without glasses, can preview the picture that wants to shoot, it is convenient for user to compose, improve the use experience of user to shoot image using smart glasses.

[0005] To achieve the above-mentioned purpose, the smart glasses proposed in the present application include frame and at least two legs, further comprising:

[0006] Camera module, the camera module is arranged in the side of the frame away from human eye;

[0007] Near-eye display module, the near-eye display module is at least partially embedded in the side of the frame close to human eye, the side of the frame close to human eye is correspondingly provided with recess for accommodating the near-eye display module;

[0008] The near-eye display module includes micro display, and the emergent light of the micro display is directly incident to eye;

[0009] The micro display is configured to receive and display the image output from the camera module.

[0010] Optionally, the smart glasses further comprise:

[0011] Master control module, the master control module is arranged in the frame or at least one of the legs;

[0012] The master control module is connected with the camera module and the micro display respectively;

[0013] The master control module is configured to receive the image output from the camera module, and output image to the micro display.

[0014] Optionally, the smart glasses further comprise:

[0015] An image processor is disposed in the signal transmission path between the main control module and the camera module;

[0016] The image output by the camera module is processed by the image processor and then transmitted to the main control module.

[0017] Optionally, the smart glasses further include:

[0018] An interaction module is disposed in the frame or at least one of the temples, and the interaction module is connected to the main control module;

[0019] The interaction module is configured to collect interaction signals and transmit the interaction signals to the main control module.

[0020] The main control module is configured to receive the interaction signal and control the camera module to capture images and the microdisplay module to display images based on the interaction signal.

[0021] Optionally, the smart glasses further include:

[0022] A communication module, which is connected to the main control module;

[0023] The main control module is configured to transmit images output from the camera module to the communication module;

[0024] The communication module is configured to receive images and send images to devices connected to the communication module.

[0025] Optionally, the smart glasses further include:

[0026] The power supply module includes a first battery and a second battery;

[0027] The first battery and the second battery are detachably mounted on the two temples, respectively;

[0028] The power supply module is configured to supply power to at least one power-consuming module located in the frame and the temple.

[0029] Optionally, the interaction module includes at least one of a microphone, a touch component, and a physical button.

[0030] Optionally, the camera module includes at least one wide-angle camera and / or at least one depth-sensing camera.

[0031] Optionally, each temple includes a rigid segment and a flexible segment. One end of the rigid segment is connected to the frame, and the other end is connected to one end of the flexible segment. The flexible segment is made of a bendable material.

[0032] Optionally, the smart glasses also include lenses mounted in the frame.

[0033] The technical solution of this application involves placing a camera module on the side of the smart glasses frame furthest from the user's eye, with a near-eye display module at least partially embedded in a groove on the side of the frame closest to the user's eye. The light emitted from the microdisplay in the near-eye display module directly enters the eye, and the microdisplay is configured to receive and display images output from the camera module. Compared to traditional smart glasses that require image transmission to other devices such as mobile phones for preview, this application allows users to preview captured images in real time while wearing the glasses, eliminating the need to put on and take off the glasses, simplifying user operation, and improving the user experience of capturing images with smart glasses. The image acquisition and display functions form a closed loop within the glasses themselves, avoiding data transmission delays dependent on external devices, and is suitable for scenarios requiring two-handed operation, such as sports and industrial inspection. Attached Figure Description

[0034] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0035] Figure 1 This is a schematic diagram of a structure involved in an embodiment of the smart glasses of this application;

[0036] Figure 2 This is a schematic diagram of a frame involved in an embodiment of the smart glasses of this application;

[0037] Figure 3 This is a schematic diagram of another frame involved in the smart glasses embodiment of this application.

[0038] The following are the annotations for the reference numerals: 10, frame; 20, temple; 31 and 32 both indicate the camera module, or one of them indicates the camera module and the other indicates the decorative part; 40, near-eye display module.

[0039] The realization of the purpose, functional features and advantages of this application will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0040] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.

[0041] It should be noted that if the embodiments of this application involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture. If the specific posture changes, the directional indicators will also change accordingly.

[0042] Furthermore, if the embodiments of this application involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the use of "and / or" or "and / or" throughout the text includes three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution that simultaneously satisfies A and B. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed in this application.

[0043] This application proposes a smart glasses.

[0044] In one embodiment of this application, the smart glasses include a frame and two temples. The frame is used to mount lenses, and the temples are connected to the frame. The smart glasses also include a camera module and a near-eye display module.

[0045] The camera module is positioned on the side of the frame furthest from the user's eyes. This "furthest side" refers to the side of the frame furthest from the user's eyes when the smart glasses are worn. The camera module's shooting direction is towards this furthest side, capturing images in the direction of the user's line of sight when wearing the glasses. The camera module is a device for acquiring external optical information, specifically implemented using a CMOS image sensor and an optical lens. Its installation position avoids obstructing the user's natural field of vision. In one embodiment, multiple camera modules can be installed in different positions on the frame to capture images from different directions; for example, one camera module can be installed on each of the left and right sides of the frame furthest from the user's eyes.

[0046] The near-eye display module is at least partially embedded in the side of the frame closest to the user's eye. Correspondingly, a groove is provided on the side of the frame closest to the user's eye to accommodate the near-eye display module. The position of the groove on the side of the frame closest to the user's eye is not limited in this embodiment. For example, in one embodiment, it can be located at the upper part of the frame closest to the user's eye, corresponding to the position of the user's left or right eye. The user can see the image displayed by the near-eye display module embedded in the groove at the upper part of the frame by slightly raising their eyes. The groove refers to the embedded mounting structure on the side of the frame closest to the user, and the depth of the groove can match the thickness of the embedded portion of the near-eye display module. It should be noted that even if the near-eye display module partially protrudes from the groove, it does not obstruct the area of ​​the lens mounted on the frame. That is, when the user wears smart glasses, the near-eye display module does not affect the user's ability to see the surrounding environment through the area where the lens is mounted.

[0047] The near-eye display module includes a microdisplay. Unlike near-eye displays based on waveguides, prisms, etc., the light emitted from the microdisplay directly enters the eye, without refraction by lenses installed in the smart glasses or reflection by prisms. It should be noted that because the near-eye display module is embedded in a groove in the frame, and the light emitted from the microdisplay directly enters the eye, the user can directly see the surrounding environment while wearing the smart glasses. When needing to view the image displayed on the microdisplay, they only need to raise their eyes and focus their gaze on the image displayed on the microdisplay. In one embodiment, the microdisplay may include a display component and an optical component. The display component generates light to form an image source, and the optical component is mounted on the light-emitting side of the display component via a bracket, receiving the light from the display component and projecting it to the human eye. In some embodiments, the display component may include, for example, Micro-LED (Micro Light-Emitting Diode), uLED (micro LED), Micro-oled (Micro Organic Light-Emitting Diode), LCoS (Liquid Crystal On Silicon), LCD (Liquid Crystal Display), DMD (Digital Micromirror Device) / DLP (Digital Light Processing), or LBS (Laser Beam Scanning), or any combination of these technologies. In some embodiments, the near-eye display module may also include other components, such as a bracket for mounting the optical components on the light output side of the display component, and data input lines connected to the display component.

[0048] In a specific implementation, the near-eye display module can be fully embedded in the groove opened in the frame, or only partially embedded in the groove, with the rest protruding out of the groove. For example, the microdisplay can be set to protrude out of the groove as a whole, and the data input lines and other structures connected to the display components in the microdisplay can be embedded in the groove. Alternatively, the display components in the microdisplay and the data input lines and other structures connected to the display components can be embedded in the groove, and the optical components in the microdisplay can protrude out of the groove. In a specific implementation, the specific components to be embedded in the groove can be determined according to the thickness design requirements of the smart glasses frame.

[0049] like Figure 1 As shown, an example of the placement of the near-eye display module and the camera module in the frame of smart glasses is given, where 10 represents the frame, 20 represents the temple, 31 and 32 can both represent the camera module, or one of them represents the camera and the other represents the decorative piece, and 40 represents the near-eye display module. Figure 1 In the middle, part of the near-eye display module 40 protrudes from the recessed setting, and the part embedded in the recess is in Figure 1 It is not shown in the text. It should be noted that... Figure 1 This is merely an example of the placement of the near-eye display module and camera module within the frame of smart glasses, and does not constitute a limitation on the placement of the near-eye display module and camera module within the frame of smart glasses.

[0050] In one feasible implementation, such as Figure 1 As shown, the portion of the near-eye display module protruding from the groove can be configured to move left and right, tilt (not shown in the figure), and / or rotate (not shown in the figure) relative to the lens frame, thereby changing the direction of the light emitted from the microdisplay.

[0051] The microdisplay is configured to receive and display images output from the camera module. In one embodiment, the microdisplay and the camera module can be directly connected, with images captured by the camera module being transmitted to the microdisplay in real time. The microdisplay receives and displays the images directly output by the camera module. In other embodiments, the microdisplay and the camera module can also be indirectly connected, with images output by the camera module being transmitted to the microdisplay after being forwarded or processed by other modules.

[0052] When the camera module captures an external scene, the image data is transmitted to the microdisplay via internal circuitry. The microdisplay converts the electrical signals into visible light signals, and uses optical elements to adjust the light path so that the light directly enters the pupil to form an image.

[0053] Traditional smart glasses require images to be transmitted to other devices, such as mobile phones, for previewing. This application enables users to preview captured images in real time while wearing the glasses, eliminating the need to remove and put on the glasses. The image acquisition and display functions form a closed loop within the glasses themselves, avoiding data transmission delays caused by relying on external devices. This makes it suitable for scenarios requiring two-handed operation, such as sports and industrial inspections.

[0054] In one embodiment, the smart glasses further include a main control module disposed in the frame or at least one temple; the main control module is connected to a camera module and a microdisplay respectively; the main control module is configured to receive images output from the camera module and output the images to the microdisplay.

[0055] The main control module refers to the core processing unit used to control image data processing and transmission. It can be implemented using an embedded processor or microcontroller, for example, integrated on a PCB (Printed Circuit Board) motherboard inside the frame or temples of the glasses. In one embodiment, the embedded processor or microcontroller is implemented as a main control integrated circuit (Main Control IC). In one embodiment, the main control module is connected to the camera module via a flexible circuit or micro-connector to transmit signals and receive raw image data. In another embodiment, the main control module is connected to the microdisplay via a low-latency transmission protocol data interface, such as MIPI (Mobile Industry Processor Interface), to transmit the processed image signal to the display device. Positioning the main control module within the frame or temples allows for spatial distribution within the glasses structure to balance the weight of the device, preventing discomfort caused by module concentration.

[0056] In one embodiment, the main control module receives real-time image data streams from the camera module via a hardware connection. The main control module can directly transmit the image signal to a microdisplay in the frame via internal circuitry, or it can perform format conversion or basic processing on the image, such as adjusting the resolution to match the microdisplay's display parameters, and then directly transmit the processed image signal to the microdisplay via internal circuitry. The microdisplay displays the received image, thus allowing the user to preview the camera's captured image in real time without interrupting the wearing process, achieving a synchronized closed loop between shooting and display.

[0057] Traditional smart glasses require wireless transmission of images captured by a camera to external devices for processing and display, resulting in operational delays and process interruptions. This solution, however, integrates a main control module to create a localized processing link, eliminating reliance on external devices and shortening the image transmission path.

[0058] In one embodiment, the smart glasses also include an image processor, which is disposed in the signal transmission path between the main control module and the camera module; the image output by the camera module is processed by the image processor and then transmitted to the main control module.

[0059] An image processor is a dedicated computing unit that preprocesses raw image data. It can be implemented using an embedded digital signal processor or a dedicated integrated circuit chip (also known as an image processing IC), and is used to perform at least one basic operation among distortion correction, viewpoint matching, noise reduction, and format conversion. The signal transmission path refers to the physical data transmission path between the camera module and the main control module. This can be implemented using circuit board traces or flexible circuit components, ensuring that the image processor can be embedded in the physical link between the camera module's output and the main control module's input.

[0060] In one embodiment, the raw image captured by the camera module is first transmitted to the image processor to complete distortion correction and viewpoint matching in order to eliminate lens optical distortion and match the user's viewpoint. The processed image data is input to the main control module through the signal transmission path. The main control module transmits the image to the microdisplay for display, thereby ensuring that the image displayed on the microdisplay seen by the user is consistent with the image captured by the camera, realizing "what you see is what you get".

[0061] In one embodiment, the smart glasses further include an interaction module disposed in the frame or at least one temple, and the interaction module is connected to the main control module; the interaction module is configured to collect interaction signals and transmit interaction signals to the main control module; the main control module is configured to receive interaction signals and control the camera module to capture images and control the microdisplay module to display images according to the interaction signals.

[0062] The interaction module refers to the input device used to receive user operation commands. This can be implemented using a microphone, touch components, or physical buttons, generating interaction signals through sound wave acquisition, physical contact, or button pressing. The main control module generates corresponding control commands by parsing these interaction signals. Interaction signals are electrical signals representing the user's operational intentions, specifically pulse signals or digitally encoded signals, and are transmitted to the main control module via signal transmission lines.

[0063] In one embodiment, when a user touches the touch area on the temple surface or issues a voice command, the interaction module converts the collected operation signal into an electrical signal and transmits it to the main control module. After decoding the received signal, the main control module sends a shooting command to the camera module and controls the microdisplay to project the captured image into the user's field of view in real time. For example, when the user touches the touch button, the main control module activates the microdisplay; when the user presses the touch button again, the main control module sends a shooting command to the camera module, the camera module captures and outputs an image, and the main control module transmits the image to the microdisplay for display.

[0064] Compared to existing technologies, traditional smart glasses require users to remove the device to view their phone in order to preview the captured content. This solution, however, integrates an interactive module into the glasses themselves, enabling simultaneous shooting control and image display. In existing technologies, users must stop wearing the glasses to preview images, while this solution, through a linkage mechanism between interactive signals and the display module, allows users to complete the entire operation while still wearing the glasses.

[0065] In one embodiment, the smart glasses further include a communication module connected to the main control module; the main control module is configured to transmit images output from the camera module to the communication module; the communication module is configured to receive images and send images to devices connected to the communication module.

[0066] A communication module is a hardware unit that enables wireless or wired data transmission. It can be implemented using devices such as Bluetooth chips, Wi-Fi modules, or UWB (Ultra-Wideband) modules to establish a data channel between the smart glasses and external electronic devices. This module pushes image data to external electronic devices via wireless or wired protocols, allowing users to access real-time images without physical contact. In one embodiment, the smart glasses also include a storage module, which can be located in the frame or temples. Images captured by the camera module are stored in the storage module, and the main control module retrieves images from the storage module and transmits them to the communication module. The communication module then sends the images to external electronic devices such as mobile phones. In another embodiment, the main control module receives images output from the camera module, outputs them to a microdisplay for display, and transmits them to the communication module. The communication module then sends the images to external electronic devices such as mobile phones for display on the screen of the external electronic devices. This approach can be applied to scenarios requiring real-time image output, such as live streaming.

[0067] In one embodiment, the communication module can also be integrated into the main control IC. For example... Figure 2As shown, the communication module can be implemented using a Wi-Fi module. The smart glasses also include a storage module, which can be set in the frame or temple. Images captured by the camera module are output to the storage module for storage. The main control IC obtains the images from the storage module and sends the images to a smartphone with an established communication connection via the Wi-Fi module.

[0068] In one embodiment, the smart glasses further include a power supply module, which includes a first battery and a second battery, which are detachably mounted on the two temples respectively. The power supply module is configured to supply power to at least one power-consuming module located in the frame and temples.

[0069] Detachable installation refers to the physical connection between the battery and the temple via mechanical clips or magnetic structures, specifically employing a hot-swappable method, allowing replacement of a single battery without disassembling the entire eyeglass structure. Separate battery placement in each temple means that the first and second batteries are independently distributed within the cavities at the ends of the left and right temples. This can be achieved using flat lithium battery packaging to accommodate internal temple space constraints, and a split layout to achieve balanced weight distribution. The power supply module covering the frame and temple power modules refers to the power distribution network extending to the near-eye display module, camera module within the frame, and the main control module in the temples, among other power modules. This can be achieved using flexible circuit boards to transmit power across the hinge area.

[0070] In one embodiment, taking a temple as an example, a detachable battery compartment can be provided at the end of the temple to hold the battery. The battery compartment is provided with a buckle, a button and a first magnet. The end of the temple is provided with a slot and a second magnet. The buckle engages with the slot, and the first magnet and the second magnet are magnetically connected. The battery contacts the contact point provided at the end of the temple to provide power. When the button is pressed, the buckle disengages from the slot, and the battery compartment can be pulled out of the temple by overcoming the attraction between the magnets with external force, so that the battery in the battery compartment can be replaced.

[0071] In one embodiment, when the first battery is depleted, the second battery can maintain power to keep the smart glasses running. The user only needs to remove the depleted battery and replace it with a new one to restore the dual-battery parallel power supply. The parallel circuit design of the power supply module allows both batteries to simultaneously power the camera module, microdisplay, and communication module. When one battery is removed, the remaining battery automatically takes over the entire load. The wiring inside the temples can adopt a zoned power supply design. For example, the left battery prioritizes powering the interaction module in the left temple, the right battery prioritizes powering the main control module in the right temple, and the power modules in the frame area are powered by both batteries.

[0072] Considering the power requirements of the camera module, micro-display, main control module, and interaction module in smart glasses, a dual-battery independent detachable structure is used to increase the battery life of smart glasses. The glasses can be worn while being replaced with batteries, and uninterrupted power supply can be achieved by alternating batteries during continuous use of smart glasses, thus solving the problem of frequent charging caused by the limited capacity of a single battery.

[0073] like Figure 3 As shown, the removable battery powers the main control IC and other power modules. The microphone signal collected by the microphone is transmitted to the main control IC. The main control IC can generate control commands based on the microphone signal to control the camera module to capture images and to control the micro display to display images. The images captured by the camera module are processed by the image processing IC and then transmitted to the main control IC. The main control IC then transmits the images to the micro display for display.

[0074] In one embodiment, to further increase the battery life of the smart glasses, the power supply module can output power data to the main control module. The main control module switches the working mode of each module in the smart glasses according to the power data. For example, when the power is below 20%, the microdisplay is controlled to switch to power saving mode. In power saving mode, the image refresh rate of the microdisplay is reduced or it stops working.

[0075] In one embodiment, the camera module may include at least one wide-angle camera and / or at least one depth-sensing camera. A wide-angle camera is an image acquisition device with a horizontal field of view greater than the standard field of view, enabling a single shot to cover a wider area of ​​the scene by expanding the shooting angle. A depth-sensing camera is an image acquisition device capable of acquiring distance information between the subject and the camera. By expanding the horizontal field of view, the wide-angle camera allows users to capture images containing more environmental elements without frequently turning their heads or adjusting the shooting angle, reducing the loss of image edge information due to a narrow field of view. The depth-sensing camera acquires the depth information of the subject, generating a point cloud or depth map containing distance data, providing a three-dimensional spatial coordinate basis for subsequent image processing. When the camera module includes both a wide-angle camera and a depth-sensing camera, when they work together, the two-dimensional image output by the wide-angle camera can be fused with the depth data output by the depth-sensing camera, for example, through timestamp synchronization or spatial coordinate alignment, forming composite image data with stereoscopic information. Displaying this composite image data through a microdisplay in the near-eye display module allows users to more intuitively preview the captured three-dimensional image. In a specific implementation, the operation of fusing the two-dimensional image output by the wide-angle camera with the depth data output by the depth camera can be performed by an image processor.

[0076] In one embodiment, each temple includes a rigid segment and a flexible segment. One end of the rigid segment is connected to the frame, and the other end is connected to one end of the flexible segment. The flexible segment is made of a bendable material.

[0077] Rigid segments refer to the rigid support parts of the temples that are directly connected to the frame. These can be made of materials such as polycarbonate or metal and are used to maintain the structural stability of the connection between the temples and the frame, preventing optical components from shifting due to temple deformation. Flexible segments, on the other hand, refer to the deformable parts at the ends of the temples that connect to the rigid segments. These can be made of materials such as thermoplastic polyurethane or silicone. The elastic deformation of these materials allows the temple ends to conform to the contours of the ear, while also distributing localized pressure during wear.

[0078] Specifically, the rigid segment, serving as the main support for the temples, forms a rigid connection with the frame, ensuring the optical module remains in a fixed position during wear. The flexible segment, with its bendable nature, allows users to adjust the bending angle of the temple ends according to head size and ear shape, maintaining clamping force while avoiding excessive pressure on the area behind the ears. The connection between the rigid and flexible segments forms a mechanical transition zone. When the temples are under overall stress, the flexible segment absorbs externally applied stress through deformation, preventing stress concentration from being transferred to the frame and causing lens displacement.

[0079] In some specific implementations, the connection between the rigid and flexible segments can employ a nested structure. For example, the rigid segment has a groove at its end, and the flexible segment has a protrusion at its front end that matches the groove, achieving a mechanical connection through a snap-fit ​​mechanism. The length of the flexible segment can be set to one-third to one-half of the total temple length to accommodate different ear positions for different users.

[0080] In one embodiment, the smart glasses further include lenses mounted in the frame.

[0081] Lenses are optical components installed in eyeglass frames. They can be ordinary clear lenses or vision-correcting lenses with refractive adjustment functions, used to meet users' needs for visual assistance or environmental observation. They can be installed using snap-on, magnetic, or embedded methods to ensure the lenses are secure and replaceable.

[0082] When wearing smart glasses, users can observe the external environment through the lenses while simultaneously receiving images captured by the camera module directly through a micro-display. When it is necessary to preview the camera's view, users only need to adjust their gaze to focus on the micro-display, without removing the glasses or relying on external devices, thus achieving a seamless switch between environmental observation and image preview.

[0083] The above description is merely an exemplary embodiment of this application and does not limit the patent scope of this application. Any equivalent structural transformations made based on the technical concept of this application and the contents of the specification and drawings of this application, or direct / indirect applications in other related technical fields, are included within the patent protection scope of this application.

Claims

1. A smart glasses, comprising a glasses frame and two glasses legs connected with the glasses frame, characterized in that, The smart glasses further comprise: a camera module arranged on the side of the frame away from the human eye; a near-eye display module at least partially embedded in the side of the frame close to the human eye, the side of the frame close to the human eye being provided with a recess for accommodating the near-eye display module; the near-eye display module comprises a micro display, and the light rays emitted by the micro display are directly incident on the eye; the micro display is configured to receive and display the image output from the camera module.

2. The smart glasses of claim 1, wherein, The smart glasses further comprise: a main control module arranged in the frame or at least one of the temple; the main control module is connected with the camera module and the micro display respectively; the main control module is configured to receive the image output from the camera module and output the image to the micro display.

3. The smart glasses of claim 2, wherein, The smart glasses further comprise: an image processor arranged in the signal transmission path between the main control module and the camera module; the image output by the camera module is transmitted to the main control module after being processed by the image processor.

4. The smart glasses of claim 2, wherein, The smart glasses further comprise: an interaction module arranged in the frame or at least one of the temple, the interaction module being connected with the main control module; the interaction module is configured to collect interaction signals and transmit the interaction signals to the main control module; the main control module is configured to receive the interaction signals and control the camera module to capture images and control the micro display module to display images according to the interaction signals.

5. The smart glasses of claim 2, wherein, The smart glasses further comprise: a communication module connected with the main control module; the main control module is configured to transmit the image output from the camera module to the communication module; the communication module is configured to receive the image and send the image to a device connected with the communication module.

6. The smart glasses of claim 2, wherein, The smart glasses further comprise: a power supply module comprising a first battery and a second battery; the first battery and the second battery are respectively detachably mounted on the two temples; the power supply module is configured to supply power to at least one power-consuming module arranged in the frame and the temple.

7. The smart glasses of claim 4, wherein, The interaction module comprises at least one of a microphone, a touch component and a physical button.

8. The smart glasses of claim 1, wherein, The camera module comprises at least one wide-angle camera and / or at least one depth-of-field camera.

9. The smart glasses of claim 1, wherein, Each of the temples comprises a rigid segment and a flexible segment, one end of the rigid segment being connected with the frame, the other end being connected with one end of the flexible segment, and the flexible segment being made of a bendable material.

10. The smart glasses of any one of claims 1 to 9, wherein, The smart glasses further comprise a lens mounted in the frame.