Intelligent glasses, control method for intelligent glasses and storage medium

By integrating light emitting parts, detection modules and control circuits in smart glasses, detecting the obstruction state of light emitters and photosensitive elements, and controlling the shooting components to be powered off, the privacy protection problem of smart glasses during shooting is solved, and the aesthetics and integration of the equipment are improved.

CN120353030APending Publication Date: 2025-07-22ZHEJIANG FUTURE ELF ARTIFICIAL INTELLIGENCE TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510640814.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-16
Publication Date
2025-07-22

AI Technical Summary

Technical Problem

The existing smart glasses lack effective privacy protection mechanisms in shooting states, which may infringe on others' privacy rights without others' knowledge. At the same time, the added shooting status indicator light affects the aesthetics of the equipment.

Method used

A smart glasses are designed, integrating light emitting parts, detection modules and control circuits. By detecting the obstruction state of the light emitter and photosensitive elements, the shooting component is controlled to power off when the occlusion degree reaches a preset value. Combined with ambient light detection and multiple luminous modes, the integration is improved and the number of holes is reduced.

Benefits of technology

Effectively protect the privacy of the subject, reduce the overall complexity and weight of the device, improve the aesthetics, and improve component utilization and structural compactness.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120353030A_ABST
    Figure CN120353030A_ABST
Patent Text Reader

Abstract

The embodiment of the invention discloses intelligent glasses, a control method for the intelligent glasses and a storage medium, the intelligent glasses comprise a mounting block, and a light-emitting part and a detection module which are arranged on the mounting block, the detection module comprises a detection light emitter and a photosensitive element, the detection light emitter emits detection light outwards, and the photosensitive element is arranged on the light-emitting part; the photosensitive element receives reflected light formed by external reflection detection light to generate a proximity signal, receives ambient light and generates an ambient light signal; the control circuit adjusts the light-emitting mode according to the working state of the intelligent glasses, determines the shielding state of the light-emitting part according to the proximity signal, and controls the shooting assembly to be powered off when the shielding state of the light-emitting part reaches the preset shielding degree. Therefore, the shooting prompting lamp, the shielding detection, the ambient light detection and the working state prompting are integrated in one component, the integration level and the element utilization rate of the intelligent glasses are improved, the cost and the weight are effectively reduced, meanwhile, the number of holes in the glasses main body is reduced, and the attractiveness is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of smart wearable devices, and more specifically, to a smart glasses, a control method for the smart glasses, and a storage medium. Background Art

[0002] With the development of technology, more and more wearable smart devices have entered people's daily lives. Smart glasses are a common wearable device. By integrating electronic components into the glasses, the smart glasses can have functions such as image display, audio playback, and signal collection. When a user of smart glasses takes pictures or videos in a public place or a private space, they may record images or videos of others without the knowledge of others, thus resulting in an infringement of the privacy rights of others. Although some current smart glasses are provided with a shooting status indicator light for shooting prompts, the added shooting status indicator light increases the overall complexity of the device and easily affects the aesthetics of the smart glasses. Summary of the Invention

[0003] In view of this, embodiments of the present invention provide a smart glasses, a control method for the smart glasses, and a storage medium, which are beneficial to improving at least some of the above problems existing in the prior art.

[0004] Embodiments of the present invention provide a smart glasses, including a glasses body, a prompting component, a shooting component, and a control circuit; the prompting component is disposed on the glasses body, the prompting component includes a mounting block, a protective lens, a light-emitting component, and a detection module, the mounting block has a first side and a second side arranged oppositely, the mounting block has a first through hole, a second through hole, and a third through hole that are spaced apart and penetrate the first side and the second side, the protective lens is mounted on the first side and covers the first through hole, the second through hole, and the third through hole, the light-emitting component is disposed in the first through hole, the detection module includes a detection light emitter and a photosensitive element, the detection light emitter is configured to emit detection light outward, the detection light emitter is disposed in the second through hole, the photosensitive element is disposed in the third through hole, and the photosensitive element is configured to receive a reflected light formed by external reflection of the detection light to generate a proximity signal and receive ambient light to generate an ambient light signal; the shooting component is disposed on the glasses body; the control circuit is electrically connected to the light-emitting component, the detection module, and the shooting component, and the control circuit is configured to: control the light-emitting component to adjust the light-emitting mode according to the working state of the smart glasses, and the number of light-emitting modes of the light-emitting component is at least two; determine the occlusion state of the light-emitting component according to the proximity signal; when the occlusion state of the light-emitting component reaches a preset occlusion degree, control the shooting component to power off; wherein, the control of the light-emitting component to adjust the light-emitting mode according to the working state of the smart glasses includes: when the shooting component is enabled, control the light-emitting component to enter a first light-emitting mode.

[0005] Furthermore, the photosensitive element is also configured to receive ambient light and generate an ambient light signal, and the glasses body also includes a display component, which is electrically connected to the control circuit; the control circuit is also configured to: determine the ambient light intensity state according to the ambient light detection signal; and, when the display component is in a display state, adjust the display brightness of the display component according to the ambient light intensity state.

[0006] Furthermore, the protective mirror includes a fully transparent area and a semi-transparent area, the first transparent hole is arranged opposite to the fully transparent area, the second transparent hole and the third transparent hole are arranged opposite to the semi-transparent area, and the semi-transparent area surrounds the fully transparent area.

[0007] Furthermore, the detection light is infrared light, the semi-transparent area is configured to partially reflect and partially transmit the infrared light, and is configured to transmit visible light outside the smart glasses to the photosensitive element; there are two photosensitive elements, and the two photosensitive elements are respectively a first photosensitive element and a second photosensitive element, the first photosensitive element is configured to receive external reflected light to generate the proximity signal, and the second photosensitive element is configured to receive the ambient light and generate the ambient light signal.

[0008] Furthermore, the protective mirror also includes a shading area, the light transmittance of the shading area is lower than the light transmittance of the fully transparent area and the semi-transparent area, and the shading area is arranged outside the semi-transparent area and avoids the first through hole, the second through hole and the third through hole.

[0009] Furthermore, the prompt component also includes a light guide column, which is arranged in the first through hole, and the light guide column is configured to guide the light of the light-emitting component to the full-transmission area.

[0010] Furthermore, the light-emitting element includes a multi-color light-emitting diode, and the adjusting light-emitting mode includes at least one of adjusting the light color, adjusting the light flashing frequency, and adjusting the light intensity.

[0011] Furthermore, controlling the light-emitting component to adjust the light-emitting mode according to the working state of the smart glasses also includes at least one of the following items: when the smart glasses are turned on, controlling the light-emitting component to enter the second light-emitting mode; when the smart glasses are turned off, controlling the light-emitting component to enter the third light-emitting mode; when the smart glasses are in a charging state, controlling the light-emitting component to enter the fourth light-emitting mode.

[0012] Further, the glasses body includes a frame and temple arms; the frame has an installation space, the installation space communicates with the surface of the frame through an installation hole, the prompting component is arranged in the installation space, the protective lens is arranged on the surface of the frame and at least partially covers the installation hole; the temple arms are connected to the frame.

[0013] Further, the control circuit is further configured to control the detection light emitter to emit detection light outward when the photographing component is enabled.

[0014] In a second aspect, an embodiment of the present invention further provides another smart glasses, including a glasses body, a prompting component and a photographing component; the prompting component is arranged on the glasses body, the prompting component includes a light-emitting element and a detection module, the detection module is configured to generate a proximity signal when an obstacle approaches the light-emitting element; the photographing component is arranged on the glasses body; the control circuit is electrically connected to the light-emitting element, the detection module and the photographing component, and the control circuit is configured to: control the light-emitting element to adjust the light-emitting mode according to the working state of the smart glasses, and the number of light-emitting modes of the light-emitting element is at least two; determine the occlusion state of the light-emitting element according to the proximity signal; and when the occlusion state of the light-emitting element reaches a preset occlusion degree, control the photographing component to power off; wherein, the control of the light-emitting element to adjust the light-emitting mode according to the working state of the smart glasses includes: when the photographing component is enabled, controlling the light-emitting element to enter the first light-emitting mode.

[0015] In a third aspect, an embodiment of the present invention further provides a control method for a smart glasses, the smart glasses includes a prompting component and a photographing component, the prompting component includes a light-emitting element and a detection module, the detection module includes a detection light emitter and a photosensitive element, and the control method includes: controlling the light-emitting element to adjust the light-emitting mode according to the working state of the smart glasses, and the number of light-emitting modes of the light-emitting element is at least two; controlling the detection light emitter to emit detection light outward; determining the occlusion state of the light-emitting element according to the proximity signal, the proximity signal is generated by the photosensitive element receiving the reflected light reflected by the external detection light; and when the occlusion state of the light-emitting element reaches a preset occlusion degree, controlling the photographing component to power off; wherein, the control of the light-emitting element to adjust the light-emitting mode according to the working state of the smart glasses includes: when the photographing component is enabled, controlling the light-emitting element to enter the first light-emitting mode.

[0016] In a fourth aspect, an embodiment of the present invention further provides a computer-readable storage medium, on which computer program instructions are stored, and when the computer program is executed by a processor, the control method described in the second aspect is implemented.

[0017] The embodiment of the present invention provides a smart glasses, a control method for the smart glasses and a storage medium. The smart glasses include a prompting component arranged on the glasses body, which includes a light-emitting element and a detection module. The detection module includes a detection light emitter and a photosensitive element. The detection light emitter emits detection light outwards, and the photosensitive element is configured to receive the reflected light formed by the external reflected detection light to generate a proximity signal and receive ambient light and generate an ambient light signal. The control circuit adjusts the light-emitting mode according to the working state of the smart glasses, and determines the occlusion state of the light-emitting element according to the proximity signal, and when the occlusion state of the light-emitting element reaches a preset occlusion degree, controls the shooting component to power off. Thus, the smart glasses integrate the shooting indicator light, occlusion detection, ambient light detection and working state indication in one component, improving the integration degree and component utilization rate of the smart glasses, effectively reducing the cost and weight, and at the same time being beneficial to reducing the number of openings on the glasses body and improving the aesthetics. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Through the following description of the embodiments of the present invention with reference to the accompanying drawings, the above and other objects, features and advantages of the present invention will become clearer. In the drawings:

[0019] Figure 1 is a schematic perspective view of the smart glasses according to an embodiment of the present invention;

[0020] Figure 2 is a schematic block diagram of the smart glasses according to an embodiment of the present invention;

[0021] Figure 3 is an exploded structural view of the prompting component according to an embodiment of the present invention;

[0022] Figure 4 is a schematic cross-sectional view of the prompting component installed on the glasses body according to an embodiment of the present invention;

[0023] Figure 5 is a schematic cross-sectional view of the prompting component installed on the glasses body according to another embodiment of the present invention;

[0024] Figure 6 is a schematic structural view of the protective lens according to an embodiment of the present invention;

[0025] Figure 7 is a schematic flow chart of the control method for the smart glasses according to an embodiment of the present invention.

[0026] Description of the reference numerals:

[0027] 10 - Glasses main body; 11 - Frame; 111 - Installation space; 112 - Installation hole; 12 - Temple; 13 - Display component; 20 - Hint component; 21 - Installation block; 211 - First through hole; 212 - Second through hole; 213 - Third through hole; 22 - Protective lens; 221 - Fully transparent area; 222 - Semi - transparent area; 223 - Light - shielding area; 23 - Light - emitting element; 24 - Detection module; 241 - Detection light emitter; 242 - Photosensitive element; 2421 - First photosensitive element; 2422 - Second photosensitive element; 25 - Light guide column; 30 - Shooting component; 40 - Control circuit. Detailed implementation mode

[0028] The following describes the present application based on embodiments, but the present application is not limited to these embodiments. In the following detailed description of the present application, some specific details are described in detail. Those skilled in the art can fully understand the present application without the description of these details. In order to avoid obscuring the essence of the present application, well - known methods, processes, flows, components and circuits are not described in detail.

[0029] In addition, those of ordinary skill in the art should understand that the drawings provided herein are for illustrative purposes only, and the drawings are not necessarily drawn to scale.

[0030] Unless the context clearly requires otherwise, words such as "including", "comprising" and the like in the entire application document should be interpreted as having an inclusive meaning rather than an exclusive or exhaustive meaning; that is, the meaning of "including but not limited to".

[0031] In the description of the present application, it should be understood that terms such as "first", "second", etc. are only used for descriptive purposes and cannot be understood as indicating or implying relative importance. In addition, in the description of the present application, unless otherwise specified, the meaning of "a plurality of" is two or more.

[0032] For the solutions described in this specification and embodiments, if they involve the processing of personal information, they will be processed on the premise of having a legal basis (such as obtaining the consent of the personal information subject, or being necessary for the performance of a contract, etc.), and will only be processed within the specified or agreed scope. If the user refuses to process personal information other than the necessary information required for the basic functions, it will not affect the user's use of the basic functions.

[0033] Refer to Figure 1 and Figure 2 , in the embodiment of the present invention, the smart glasses include a glasses main body 10 and a hint component 20, a shooting component 30 and a control circuit 40 installed on the glasses main body 10. The shooting component 30 is used to controllably collect images in a predetermined direction of the smart glasses. Refer to Figure 3 and Figure 4, the prompting component 20 includes a mounting block 21, a protective lens 22, and a light-emitting component 23. The protective lens 22 is disposed on the surface of the glasses body 10, and the light-emitting component 23 is mounted on the glasses body 10 through the mounting block 21. The light of the light-emitting component 23 can be emitted outside the glasses body 10 through the protective lens 22. The control circuit 40 is electrically connected to the photographing component 30 and the light-emitting component 23 respectively. The control circuit 40 can control the light-emitting component 23 to emit light according to a preset mode when the photographing component 30 is enabled, so as to prompt the surrounding people that the smart glasses are using the photographing function, avoid unauthorized or other improper photographing behaviors by the photographed person, and improve the privacy security of the photographed person. Preferably, the light-emitting direction of the light-emitting component 23 and the photographing direction of the photographing component 30 face the same direction, for example, are arranged on the same side of the glasses body 10, so as to ensure that during the photographing process of the photographing component 30, the photographed person can clearly see the prompt light of the light-emitting component 23 and know that they are being photographed.

[0034] The glasses body 10 may include a frame 11 and temple arms 12. The temple arms 12 are disposed at both ends of the frame 11. The front end of each temple arm 12 is connected to the frame 11, and the rear end extends backward. Lenses may be provided in the frame 11. According to the needs of the actual application scenario, the photographing component 30 and the prompting component 20 may be mounted on the frame 11 or the temple arms 12. In one embodiment, the photographing component 30 and the prompting component 20 may both be mounted on the frame 11. The frame 11 has a mounting space 111. The mounting space 111 communicates with the surface of the frame 11 through a mounting hole 112 opened on the frame 11. The prompting component 20 is disposed in the mounting space 111, and the protective lens 22 is disposed on the surface of the frame 11 and at least partially covers the mounting hole 112. Preferably, the protective lens 22 is hermetically mounted with the mounting hole 112 to achieve the waterproof and dustproof of the smart glasses.

[0035] In some embodiments, the light-emitting component 23 can be controlled to emit light in a variety of different modes, and different information can be transmitted outward through different light-emitting modes. For example, the light-emitting component 23 includes a multicolor light-emitting diode, and different light colors can be adopted in different light-emitting modes. For another example, different light-emitting modes can be set by means of constant light, adjusting the light flashing frequency, adjusting the light intensity, etc. In some application scenarios, different light-emitting modes of the light-emitting component 23 can be used to display different states of the smart glasses outward, so that the prompting component 20 can not only play a role in prompting the person being photographed, but also play a role in prompting other states of the smart glasses, thereby improving the structural compactness of the smart glasses. The control circuit 40 can control the light-emitting component 23 to adjust the light-emitting mode according to the working state of the smart glasses. For example, when the photographing component 30 is enabled, the control circuit 40 can control the light-emitting component 23 to enter the first light-emitting mode; when the smart glasses are powered on and started, the control circuit 40 can control the light-emitting component 23 to enter the second light-emitting mode; when the smart glasses are powered off, the control circuit 40 can control the light-emitting component 23 to enter the third light-emitting mode; when the smart glasses are in a charging state, the control circuit 40 can control the light-emitting component 23 to enter the fourth light-emitting mode. Among them, the above-mentioned first light-emitting mode, second light-emitting mode, third light-emitting mode, and fourth light-emitting mode are different from each other. For example, the first light-emitting mode is white light flashing at a first frequency, the second light-emitting mode is a constantly lit green light, the third light-emitting mode is a flashing red light, and the fourth light-emitting mode is a light with a periodically slow change in light source brightness (breathing light).

[0036] The prompt component 20 further includes a detection module 24, and the detection module 24 can be used to detect the situation where the light-emitting component 23 is approached by an obstacle, or in other words, to detect whether the light of the light-emitting component 23 is blocked by an obstacle. The mounting block 21 includes a first through hole 211, a second through hole 212, and a third through hole 213 that are spaced apart. The protective mirror 22 is mounted on one side of the mounting block 21 and covers the first through hole 211, the second through hole 212, and the third through hole 213. The mounting block 21 has a first side and a second side that are oppositely arranged, and the first through hole 211, the second through hole 212, and the third through hole 213 each penetrate the first side and the second side. The position of the light-emitting component 23 corresponds to the first through hole 211, and it can be installed in the first through hole 211, for example. The detection module 24 is configured to generate a proximity signal when the light-emitting component 23 is approached by an obstacle. For example, an inductive proximity sensor, a capacitive proximity sensor, or a photoelectric proximity sensor can be used to implement the proximity detection function. In one embodiment, the detection module 24 includes a detection light emitter 241 and a photosensitive element 242. The detection light emitter 241 is configured to emit detection light outward, and the detection light passes through the protective mirror 22 and shoots outside the smart glasses. When the detection light shoots at an obstacle, the obstacle will reflect at least a part of the detection light to form reflected light. The photosensitive element 242 is configured to receive the reflected light formed by the external obstacle reflecting the detection light, and convert the optical signal into an electrical signal to generate a proximity signal. The position of the detection light emitter 241 corresponds to the second through hole 212, and it can be installed in the second through hole 212 or aligned with the second through hole 212, for example. The position of the photosensitive element 242 is opposite to the third through hole 213, and it can be installed in the third through hole 213 or aligned with the third through hole 213, for example. The mounting block 21 is made of a light-impermeable material to achieve optical path isolation between the first through hole 211, the second through hole 212, and the third through hole 213, and to prevent the light emitted by the light-emitting component 23 or the detection light emitted by the detection light emitter 241 from directly shooting at the photosensitive element 242 and affecting the detection result.

[0037] The control circuit 40 is electrically connected to the light-emitting element 23, the detection device, and the photographing assembly 30. The control circuit 40 determines the occlusion state of the light-emitting element 23 according to the proximity signal. When the occlusion state of the light-emitting element 23 reaches a preset occlusion degree, it indicates that the light for prompting the photographing state emitted by the light-emitting element 23 may be difficult for the person being photographed to observe due to the obstruction of the user or other obstacles. At this time, if the photographing assembly 30 still conducts photographing, it may violate the privacy rights of the person being photographed. Therefore, when it is determined that the occlusion state of the light-emitting element 23 reaches the preset occlusion degree, the control circuit 40 controls the photographing assembly 30 to power off to avoid photographing the person being photographed without their knowledge. The setting of the preset occlusion degree can be determined through pre-tests. For example, different scenarios can be simulated, and different objects can be used to occlude the prompting assembly 20 at different set positions to obtain corresponding proximity signals, thereby determining the relationship between different occlusion degrees and proximity signals and the boundary of the preset occlusion degree.

[0038] The control circuit 40 may include a processor and a circuit connected between the processor and the prompting assembly 20, the photographing assembly 30, and other elements in the smart glasses. Optionally, a flexible printed circuit board (FPC) may be used to achieve the electrical connection between the prompting assembly 20 and the processor and between the photographing assembly 30 and the processor. The control circuit 40 may be disposed in the temple 12, in the frame 11, or distributed in both the frame 11 and the temple 12. The FPC connected to the prompting assembly 20 may be disposed on the second side of the mounting block 21.

[0039] The control circuit 40 activates the imaging component 30 in response to an imaging request. The imaging request refers to a request to activate the imaging component 30 for image acquisition. Optionally, the user can initiate the imaging request by performing a predefined operation on the smart glasses (such as clicking a button, voice command, gesture command, etc.). After receiving the imaging request, the control circuit 40 activates the imaging component 30 to take a picture when other conditions for activating the imaging function are met. In one embodiment, when the imaging component 30 is activated, the control circuit 40 can control the light-emitting element 23 to synchronously enter the first light-emitting mode, and the detection module 24 is activated for proximity detection. That is, when the imaging component 30 is activated, the control circuit 40 controls the detection light emitter 241 to emit detection light outward, and the photosensitive element 242 is in the proximity detection mode for detecting the reflected light. In another embodiment, before the imaging component 30 is activated, the control circuit 40 can first control the light-emitting element 23 to enter the first light-emitting mode, and the detection module 24 is activated for proximity detection. Only when the light-emitting element 23 emits light normally according to the first light-emitting mode and the occlusion state of the light-emitting element 23 corresponding to the proximity signal has not reached the preset occlusion degree (that is, the light of the light-emitting element 23 is not blocked), the imaging function of the imaging component 30 is activated. When the imaging component 30 is turned off, the control circuit 40 can control the detection light emitter 241 to stop emitting detection light.

[0040] In an embodiment of the present invention, referring to Figure 2 , the glasses body 10 further includes a display component 13, and the display component 13 is electrically connected to the control circuit 40. The control circuit 40 can also dynamically determine the ambient light intensity state through the detection module 24. The photosensitive element 242 is further configured to receive ambient light (visible light) incident from the protective lens 22 and generate an ambient light signal, and the control circuit 40 can determine the ambient light intensity state based on the ambient light detection signal. When the display component 13 is in the display state, the control circuit 40 adjusts the display brightness of the display component 13 according to the determined ambient light intensity state. When the ambient light intensity increases, the display brightness of the display component 13 is controlled to increase; when the ambient light intensity decreases, the display brightness of the display component 13 is controlled to decrease, so that the display brightness can be intelligently adjusted according to the change of the ambient light, improving the user experience. In some embodiments, the display component 13 may include structures such as a micro display, an illumination system, a waveguide, etc., and the display brightness can be adjusted by adjusting the waveguide, adjusting the current of the illumination system, or other feasible methods. The embodiments of the present invention are not limited thereto. In this way, the photosensitive element 242 can be multiplexed, which can not only realize occlusion detection but also be used for ambient light detection to adjust the display brightness of the smart glasses, improving the integration of the smart glasses.

[0041] In some embodiments, referring to Figures 4 - 6, the protective mirror 22 includes a fully transmissive area 221 and a semi-transmissive area 222. The first through hole 211 is disposed opposite to the fully transmissive area 221. The fully transmissive area 221 can completely transmit visible light or has a relatively small reflectivity (for example, the reflectivity is 1% or 2%), so that the light emitted by the light-emitting component 23 can be transmitted through the fully transmissive area 221 with relatively small loss to the outside of the protective mirror 22, ensuring that the light of the light-emitting component 23 is easily observable. The second through hole 212 and the third through hole 213 are disposed opposite to the semi-transmissive area 222, and the semi-transmissive area 222 surrounds the fully transmissive area 221. Optionally, the fully transmissive area 221 is disposed at the center of the protective mirror 22, and the semi-transmissive area 222 is an annular shape surrounding the fully transmissive area 221. During installation, only the fully transmissive area 221 needs to be aligned with the first through hole 211, and the semi-transmissive area 222 can overlap with the second through hole 212 and the third through hole 213, improving the convenience of installing the protective mirror 22.

[0042] The semi-transmissive area 222 is an area that partially transmits and partially scatters, and guides the conduction direction of light of a specific wavelength through selective transmission and reflection optical paths. The wavelength selectivity of the semi-transmissive area 222 is specifically determined according to the wavelength band of the detection light. For example, the detection light emitter 241 can be an infrared emitting diode (IR LED), and the detection light is infrared light. In one embodiment, the same photosensitive element 242 can be used for time-division multiplexing to implement two functions of proximity detection and ambient light detection. When the photosensitive element 242 is in the proximity detection state, the semi-transmissive area 222 allows the detection light to pass through and blocks visible light, ensuring that the photosensitive element 242 only responds to the detection light; in the ambient light detection mode, the semi-transmissive area 222 emits the detection light to the outside, and at the same time guides the detection light reflected by the object to the photosensitive element 242, suppressing direct light crosstalk. The semi-transmissive area 222 realizes time-division multiplexing of ambient light detection and proximity detection for the photosensitive element 242 through wavelength selectivity (high transmission of visible light / high reflection of infrared light), reducing hardware redundancy and improving integration and signal-to-noise ratio. It should be understood that the detection light emitter 241 and the detection light can also be of other types. For example, the detection light can also be a laser, and the detection light emitter 241 can be a laser emitter.

[0043] In another embodiment, referring to Figure 5 , there are two photosensitive elements 242, which are the first photosensitive element 2421 and the second photosensitive element 2422 respectively. Among them, the first photosensitive element 2421 receives the reflected light reflected from the outside to generate a proximity signal to implement proximity detection, and the second photosensitive element 2422 is used to receive ambient light and generate an ambient light signal to implement ambient light detection. Thus, proximity detection and ambient light detection can be performed simultaneously. Optionally, the first photosensitive element 2421 and the second photosensitive element 2422 can be disposed in the same third through hole 213.

[0044] In some embodiments, referring to Figure 6, the protective lens 22 further includes a light-shielding area 223, the light transmittance of the light-shielding area 223 is less than that of the semi-transmissive area 222 and the fully transmissive area 221, and the light-shielding area 223 is provided outside the semi-transmissive area 222 and avoids the first through hole 211, the second through hole 212, and the third through hole 213, which can reduce the influence of stray light on the detection module 24.

[0045] In some embodiments, the prompting component 20 further includes a light guide column 25, and the light guide column 25 can be disposed in the first through hole 211. The light guide column 25 can be made of a material with a high light transmittance. For example, materials such as PMMA, PC, and glass can be used. The refractive index of the light guide column 25 is higher than that of the surrounding environment, and the propagation path and light output effect of light are controlled through a specific shape. After the light emitted by the light-emitting part 23 enters the light guide column 25, it can be reflected by the light guide column 25 to adjust the propagation direction, and then pass through the fully transmissive area 221 of the protective lens 22.

[0046] The smart glasses according to the embodiments of the present invention include a prompting component 20 provided on the glasses body 10, which includes a mounting block 21, a light-emitting part 23, and a detection module 24 provided on the mounting block 21. The detection module 24 includes a detection light emitter 241 and a photosensitive element 242. The detection light emitter 241 emits detection light outward, and the photosensitive element 242 is configured to receive the reflected light formed by the externally reflected detection light to generate a proximity signal and receive ambient light and generate an ambient light signal; the control circuit 40 adjusts the light-emitting mode according to the working state of the smart glasses, and determines the occlusion state of the light-emitting part 23 according to the proximity signal and when the occlusion state of the light-emitting part 23 reaches a preset occlusion degree, controls the shooting component 30 to power off. Thus, the smart glasses integrate the shooting prompt light, occlusion detection, ambient light detection, and working state prompt in one component, improving the integration degree and component utilization rate of the smart glasses, effectively reducing the cost and weight, and at the same time being beneficial to reducing the number of openings on the glasses body 10, which is beneficial to improving the aesthetics.

[0047] On the other hand, the embodiments of the present invention also provide a control method for smart glasses. The smart glasses include a prompting component and a shooting component, and the prompting component includes a light-emitting part and a detection module. In one application scenario, this method can be applied to the control of the smart glasses described in at least some of the above embodiments. Refer to Figure 7 , this control method includes the following steps S100 to step S100:

[0048] Step S100, control the light-emitting part to adjust the light-emitting mode according to the working state of the smart glasses.

[0049] The number of light-emitting modes of the light-emitting component 23 is at least two. The light-emitting component 23 can be controlled to emit light in a variety of different modes. When the smart glasses are in different working states, different information can be transmitted outward through different light-emitting modes. For example, the light-emitting component 23 includes a multicolor light-emitting diode, and different light colors can be used in different light-emitting modes. Another example is that different light-emitting modes can be set by using a constant light, adjusting the light flashing frequency, adjusting the light intensity, etc. In some application scenarios, different light-emitting modes of the light-emitting component 23 can be used to display different states of the smart glasses outward, so that the prompting component 20 can not only play a role in prompting the person being photographed, but also play a role in prompting other states of the smart glasses, thereby improving the structural compactness of the smart glasses. The control circuit 40 can control the light-emitting component 23 to adjust the light-emitting mode according to the working state of the smart glasses. For example, the control circuit 40 can control the light-emitting component 23 to enter the first light-emitting mode when the photographing component 30 is enabled; when the smart glasses are powered on and started, control the light-emitting component 23 to enter the second light-emitting mode; when the smart glasses are powered off, control the light-emitting component 23 to enter the third light-emitting mode; when the smart glasses are in a charging state, control the light-emitting component 23 to enter the fourth light-emitting mode. Among them, the above-mentioned first light-emitting mode, second light-emitting mode, third light-emitting mode, and fourth light-emitting mode are different from each other. For example, the first light-emitting mode is white light flashing at a first frequency, the second light-emitting mode is a constantly lit green light, the third light-emitting mode is a flashing red light, and the fourth light-emitting mode is a light with a periodically slow change in light source brightness (breathing light).

[0050] Step S200: Determine the occlusion state of the light-emitting component according to the proximity signal of the detection module.

[0051] The detection module 24 is configured to generate a proximity signal when an obstacle approaches the light-emitting component 23. For example, an inductive proximity sensor, a capacitive proximity sensor, or a photoelectric proximity sensor can be used to implement the proximity detection function. In one embodiment, the detection module 24 includes a detection light emitter 241 and a photosensitive element 242. The detection light emitter 241 is configured to emit detection light outward, and the detection light passes through the protective mirror 22 and shoots outside the smart glasses. When the detection light shoots at an obstacle, the obstacle will reflect at least a part of the detection light to form a reflected light. The photosensitive element 242 is configured to receive the reflected light formed by the obstacle reflecting the detection light outside, and convert the optical signal into an electrical signal to generate a proximity signal.

[0052] Step S300: When the occlusion state of the light-emitting component reaches a preset occlusion degree, control the photographing component to power off.

[0053] When it is determined that the occlusion state of the light-emitting member 23 reaches a preset occlusion degree, the control circuit 40 controls the photographing assembly 30 to power off, so as to avoid photographing the person being photographed without their knowledge. The setting of the preset occlusion degree can be determined through pre-tests. For example, different scenarios can be simulated in advance, and different objects can be used to occlude the prompting assembly 20 at different set positions to obtain corresponding proximity signals, and then the relationship between different occlusion degrees and proximity signals and the boundary of the preset occlusion degree can be determined.

[0054] Those skilled in the art should understand that the embodiments of the present application can be provided as methods, devices (equipment) or computer program products. Therefore, the present application can take the form of a complete hardware embodiment, a complete software embodiment, or an embodiment combining software and hardware aspects. Moreover, the present application can be implemented as a computer program product on one or more computer-readable storage media (including but not limited to disk memories, CD-ROMs, optical memories, etc.) containing computer-usable program codes.

[0055] These computer program instructions can be stored in a computer-readable memory that can direct a computer or other programmable data processing device to work in a specific manner, so that the instructions stored in the computer-readable memory produce a manufactured article including an instruction device, and the instruction device implements the process Figure 1 specified functions in one process or multiple processes.

[0056] These computer program instructions can also be provided to the processor of a general-purpose computer, a special-purpose computer, an embedded processor or other programmable data processing device to generate a machine, so that the instructions executed by the processor of the computer or other programmable data processing device produce a device for implementing the Figure 1 specified functions in one process or multiple processes.

[0057] Another embodiment of the present invention relates to a non-volatile storage medium for storing a computer-readable program, and the computer-readable program is used for a computer to execute the above-mentioned partial or all method embodiments.

[0058] That is, those skilled in the art can understand that all or part of the steps in the methods of the above embodiments can be implemented by specifying relevant hardware through a program. The program is stored in a storage medium, including several instructions to enable a device (which can be a single-chip microcomputer, a chip, etc.) or a processor to execute all or part of the steps of the methods described in the embodiments of the present application. The aforementioned storage medium includes: various media that can store program codes, such as USB flash drives, mobile hard disks, read-only memories (ROM, Read-Only Memory), random access memories (RAM, Random Access Memory), magnetic disks, or optical discs. In an application scenario, the non-volatile storage medium storing the above computer program product can be a part of the control circuit 40 of the smart glasses.

[0059] The foregoing are only the preferred embodiments of the present application and are not intended to limit the present application. For those skilled in the art, various modifications and changes can be made to the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included within the protection scope of the present application.

Claims

1. An intelligent glasses, characterized in that, Comprising: A glasses body (10); A prompting component (20), disposed on the glasses body (10), the prompting component (20) includes a mounting block (21), a protective lens (22), a light-emitting element (23) and a detection module (24), the mounting block (21) has a first side and a second side arranged oppositely, the mounting block (21) has a first through hole (211), a second through hole (212) and a third through hole (213) which are arranged at intervals and penetrate through the first side and the second side, the protective lens (22) is mounted on the first side and covers the first through hole (211), the second through hole (212) and the third through hole (213), the light-emitting element (23) is disposed in the first through hole (211), the detection module (24) includes a detection light emitter (241) and a photosensitive element (242), the detection light emitter (241) is configured to emit detection light outward, the detection light emitter (241) is disposed in the second through hole (212), the photosensitive element (242) is disposed in the third through hole (213), the photosensitive element (242) is configured to receive the reflected light formed by the external reflection of the detection light to generate a proximity signal and receive ambient light and generate an ambient light signal; A photographing component (30), disposed on the glasses body (10); And A control circuit (40), electrically connected to the light-emitting element (23), the detection module (24) and the photographing component (30), the control circuit (40) is configured to: Control the light-emitting element (23) to adjust the light-emitting mode according to the working state of the smart glasses, and the number of light-emitting modes of the light-emitting element (23) is at least two; Determine the occlusion state of the light-emitting element (23) according to the proximity signal; And When the occlusion state of the light-emitting element (23) reaches a preset occlusion degree, control the photographing component (30) to power off; Wherein, the control of the light-emitting element (23) to adjust the light-emitting mode according to the working state of the smart glasses includes: When the photographing component (30) is enabled, control the light-emitting element (23) to enter the first light-emitting mode.

2. The smart glasses according to claim 1, characterized in that, The glasses body (10) further includes a display component (13), and the display component (13) is electrically connected to the control circuit (40); The control circuit (40) is further configured to: Determine the ambient light intensity state according to the ambient light detection signal; and When the display component (13) is in a display state, adjust the display brightness of the display component (13) according to the ambient light intensity state.

3. The smart glasses according to claim 1, characterized in that, The protective lens (22) includes a fully transparent area (221) and a semi-transparent area (222), the first through hole (211) is arranged oppositely to the fully transparent area (221), the second through hole (212) and the third through hole (213) are arranged oppositely to the semi-transparent area (222), and the semi-transparent area (222) surrounds the fully transparent area (221).

4. The smart glasses according to claim 3, characterized in that The detection light is infrared light, and the semi-transparent area (222) is configured to partially reflect and partially transmit infrared light, and is configured to transmit visible light outside the smart glasses to the photosensitive element (242); There are two photosensitive elements (242), and the two photosensitive elements (242) are respectively a first photosensitive element (2421) and a second photosensitive element (2422). The first photosensitive element (2421) is configured to receive external reflected light to generate the proximity signal, and the second photosensitive element (2422) is configured to receive the ambient light and generate the ambient light signal.

5. The smart glasses according to claim 3, characterized in that, The protective mirror (22) further comprises a light shielding area (223), the light transmittance of the light shielding area (223) being lower than the light transmittance of the fully transparent area (221) and the semi-transparent area (222), and the light shielding area (223) being arranged outside the semi-transparent area (222) and avoiding the first through hole (211), the second through hole (212) and the third through hole (213).

6. The smart glasses according to claim 3, characterized in that, The prompt component (20) further comprises: A light guide column (25) is disposed in the first through hole (211), and the light guide column (25) is configured to guide the light of the light emitting element (23) to the fully transparent area (221).

7. The smart glasses according to claim 1, characterized in that, The light-emitting element (23) comprises a multi-color light-emitting diode, and the light-emitting mode adjustment comprises at least one of adjusting the light color, adjusting the light flashing frequency, and adjusting the light intensity.

8. The smart glasses according to claim 1, characterized in that The controlling the light emitting element (23) to adjust the light emitting mode according to the working state of the smart glasses also includes at least one of the following items: When the smart glasses are turned on, the light emitting element (23) is controlled to enter a second light emitting mode; When the smart glasses are turned off, controlling the light-emitting element (23) to enter a third light-emitting mode; When the smart glasses are in a charging state, the light emitting element (23) is controlled to enter a fourth light emitting mode.

9. The smart glasses according to claim 1, characterized in that The eyeglass body (10) comprises: A mirror frame (11), comprising an installation space (111), the installation space (111) being connected to a surface of the mirror frame (11) through a installation hole (112), the prompt component (20) being arranged in the installation space (111), and the protective mirror (22) being arranged on a surface of the mirror frame (11) and at least partially covering the installation hole (112); and The temples (12) are connected to the mirror frame (11).

10. The smart glasses according to claim 1, characterized in that, The control circuit (40) is also configured to control the detection light emitter (241) to emit the detection light outward when the shooting component (30) is enabled.

11. An intelligent glasses, characterized in that, include: Eyeglass body (10); A prompting component (20) is arranged on the eyeglass body (10), the prompting component (20) comprises a light emitting component (23) and a detection module (24), the detection module (24) being configured to generate a proximity signal when the light emitting component (23) is approached by an obstacle; A shooting assembly (30) is arranged on the eyeglass body (10); as well as A control circuit (40) is electrically connected to the light emitting element (23), the detection module (24) and the shooting assembly (30), and the control circuit (40) is configured as follows: Controlling the light emitting element (23) to adjust a light emitting mode according to the working state of the smart glasses, the number of light emitting modes of the light emitting element (23) being at least two; Determine the occlusion state of the light-emitting element (23) according to the proximity signal; And When the occlusion state of the light-emitting element (23) reaches a preset occlusion degree, control the shooting component (30) to power off; Wherein, the controlling the light-emitting element (23) to adjust the light-emitting mode according to the working state of the smart glasses includes: When the shooting component (30) is enabled, control the light-emitting element (23) to enter the first light-emitting mode.

12. A control method for smart glasses, characterized in that, The smart glasses include a prompting component (20) and a shooting component (30), the prompting component (20) includes a light-emitting element (23) and a detection module (24), and the control method includes: Control the light-emitting element (23) to adjust the light-emitting mode according to the working state of the smart glasses, and the number of light-emitting modes of the light-emitting element (23) is at least two; Determine the occlusion state of the light-emitting element (23) according to the proximity signal of the detection module (24); and When the occlusion state of the light-emitting element (23) reaches a preset occlusion degree, control the shooting component (30) to power off; Wherein, the controlling the light-emitting element (23) to adjust the light-emitting mode according to the working state of the smart glasses includes: When the shooting component (30) is enabled, control the light-emitting element (23) to enter the first light-emitting mode.

13. A computer-readable storage medium having computer program instructions stored thereon, characterized in that, When the computer program is executed by a processor, it implements the control method according to claim 12.