Intelligent glasses and intelligent glasses box
By incorporating a transmission line into the connecting cord of the smart glasses, power and data transmission between the left and right temples are achieved, solving the problems of low transmission efficiency and poor reliability in existing technologies, and improving the stability of the device and the user experience.
Patent Information
- Application Number
- CN202520478378.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-03-18
AI Technical Summary
Existing smart glasses suffer from low efficiency and poor reliability in power and data transmission between the left and right temples, leading to unstable device performance and decreased reliability.
The left and right temples of the smart glasses are connected by a connecting cord, and a transmission line is set in the connecting cord to realize power and data transmission between the temples, including a data line and a power line, to ensure voltage balance and data consistency.
It improves the power transmission efficiency and data transmission consistency of smart glasses, enhances the stability and reliability of the device, extends its service life, and supports efficient operation in complex application scenarios.
Smart Images

Figure CN223770471U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of smart wearable technology, and in particular to a smart pair of glasses and a smart glasses case. Background Technology
[0002] As a type of wearable device, smart glasses have made significant progress in both technology and applications in recent years. Initially, they were primarily used for augmented reality (AR) and virtual reality (VR) experiences, enhancing the perception of the real world by overlaying digital information onto the user's field of vision. These devices typically feature miniature displays, cameras, sensors, and audio output devices to enable a variety of functions. With technological advancements, the applications of smart glasses have expanded beyond entertainment and gaming to include fields such as healthcare, industry, education, and navigation.
[0003] In practical applications, smart glasses typically integrate the working components into one temple, such as the right temple, while the battery is located on the other side, such as the left temple. Taking audio glasses as an example, to ensure audio balance between the left and right temples, two key transmission processes are required during use: the working components in the right temple need to transmit data to the left temple, and the battery in the left temple also needs to provide power to the working components in the right temple. Therefore, an effective connection needs to be established between the left and right temples to achieve power and data transmission. Utility Model Content
[0004] This application provides a smart glasses and a smart glasses case for realizing power and data transmission between the two temples.
[0005] In a first aspect, this application provides a smart glasses, comprising: a frame, a first temple, a second temple, and a connecting cord; the first temple is connected to one end of the frame, and the second temple is connected to the other end of the frame; the first temple and the second temple are connected by the connecting cord; the first temple and / or the second temple are provided with working components; the connecting cord includes a transmission line for transmitting transmission resources between the first temple and the second temple.
[0006] Optionally, the transmission resource includes a data signal, and the transmission line includes a data line; the first temple is provided with a first data interface, and the second temple is provided with a second data interface. The first data interface is connected to one end of the data line, and the second data interface is connected to the other end of the data line. The data line is used to transmit data signals between the first temple and the second temple.
[0007] Optionally, the transmission resource includes power, and the transmission line includes a power line; the first temple is provided with a first power interface, and the second temple is provided with a second power interface. The first power interface is connected to one end of the power line, and the second power interface is connected to the other end of the power line. The power line is used to transmit power between the first temple and the second temple.
[0008] Optionally, the first temple is provided with a first battery for supplying power to the working parts in the first temple; the second temple is provided with a second battery for supplying power to the working parts in the second temple.
[0009] Optionally, the working component includes a remaining power display unit, which is connected to the first battery and the second battery. The remaining power display unit is used to display the remaining power of the working component in the first temple and the second temple, as well as the remaining power of the first battery and the second battery.
[0010] Optionally, the connecting cord is equipped with a third battery for supplying power to the working parts in the first and second temples.
[0011] Optionally, the working components include a camera, a display module, and a computing unit; the camera is used to acquire images, the acquired images are processed by the computing unit to obtain display results, and the display module displays the display results; the acquired images are transmitted to the computing unit via a data cable, and / or the display results are transmitted to the display module via a data cable.
[0012] Optionally, the working components also include a storage module; one end of the connecting rope is equipped with a fourth battery, and the other end of the connecting rope is equipped with a fifth battery; the third, fourth, and fifth batteries are connected in parallel to form a power module; the camera, display module, computing unit, and storage module are all connected to the power module; the captured images are transmitted to the storage module for storage via a data cable.
[0013] Optionally, the working components include a first speaker, a second speaker, a first microphone, and a second microphone; the first microphone and the second microphone are used to receive audio data and transmit the audio data to the first speaker and the second speaker for synchronous playback via a data cable.
[0014] Optionally, the first temple includes a first sub-temper and a second sub-temper, one end of the first sub-temper being connected to the frame, and the second sub-temper being detachably connected to the other end of the first sub-temper, and the second sub-temper being provided with a sixth battery; and / or, the second temple includes a third sub-temper and a fourth sub-temper, one end of the third sub-temper being connected to the frame, and the fourth sub-temper being detachably connected to the other end of the third sub-temper, and the fourth sub-temper being provided with a seventh battery.
[0015] Optionally, the connecting rope is a flexible rope with a soft plastic layer wrapped around its exterior.
[0016] Secondly, this application provides a smart glasses case, including: a glasses case body, a first slot and a second slot; the first slot is used to place a first plug of a connecting rope, and the second slot is used to place a second plug of the connecting rope.
[0017] Optionally, the smart glasses case is equipped with a charging port and a built-in battery. The charging port is used to receive external power to charge the built-in battery, and the built-in battery is used to provide power to the power module.
[0018] The smart glasses and smart glasses case provided in this application include a frame, a first temple, a second temple, and a connecting cord. The first temple is connected to one end of the frame, and the second temple is connected to the other end of the frame. The first temple and the second temple are connected by the connecting cord. A working component is provided in the first temple and / or the second temple. The connecting cord includes a transmission line used to transmit power and data between the first temple and the second temple. In this application, the connecting cord connects the first temple and the second temple, and a transmission line is provided within the connecting cord. The transmission line can transmit power and data between the two temples, thereby realizing power and data transmission between the two temples. Attached Figure Description
[0019] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.
[0020] Figure 1 A schematic diagram of a smart glasses structure as an example of existing technology;
[0021] Figure 2 This is a schematic diagram of the structure of a smart glasses provided in Embodiment 1 of this application;
[0022] Figure 3 A schematic diagram of the structure of a smart glasses provided as an example in this application;
[0023] Figure 4 This application provides a schematic diagram of the structure of a smart glasses case as an example.
[0024] Figure 5 This application provides a schematic diagram of the structure of a smart glasses case as an example.
[0025] Figure 6 This is a schematic diagram of the structure of a smart glasses provided as an example of this application;
[0026] Figure 7 This is a schematic diagram of the structure of a smart glasses provided as an example of this application;
[0027] Figure 8 This is a schematic diagram of the structure of a smart glasses provided as an example of this application.
[0028] Explanation of reference numerals in the attached figures:
[0029] 1-Eyeglass frame;
[0030] 2-First temple; 21-First battery; 22-First data interface;
[0031] 3-Second temple, 31-Second battery, 32-Second data interface;
[0032] 4-Connecting rope, 41-Third battery, 42-Fourth battery, 43-Fifth battery;
[0033] 5-Eyeglass case body, 51-First slot, 52-Second slot, 53-Charging port, 54-Built-in battery, 55-Third slot, 56-Fourth slot;
[0034] 6-Working component, 61-Computing unit, 62-Storage module, 63-Camera, 64-Display module, 65-First speaker, 66-Second speaker, 67-First microphone, 68-Second microphone.
[0035] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation
[0036] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this application. Rather, they are merely examples consistent with some aspects of this application as detailed in the appended claims.
[0037] It should be noted that the user information (including but not limited to user device information, user personal information, etc.) and data (including but not limited to data used for analysis, data stored, data displayed, etc.) involved in this application are all information and data authorized by the user or fully authorized by all parties. Furthermore, the collection, use and processing of the relevant data must comply with relevant laws, regulations and standards, and corresponding operation entry points are provided for users to choose to authorize or refuse.
[0038] Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover but not exclude inclusion. For example, a product or device that includes a series of components is not necessarily limited to those explicitly listed, but may include other components not explicitly listed or inherent to such product or device. As used in this application, the term "module" means any known or subsequently developed hardware, software, firmware, artificial intelligence, fuzzy logic, or combination of hardware and / or software code capable of performing the functions associated with that element.
[0039] Currently, smart glasses are wearable devices that integrate operating systems and display technologies. They support a wide range of functions, including taking photos and videos, display functions, audio functions, video functions, real-time translation, ambient light detection, and more, bringing greater convenience to people's lives.
[0040] In practical applications, smart glasses typically integrate the computing unit (including a chip and circuit board) into one temple, such as the left temple, while the battery is located on the other side, such as the right temple. Therefore, during use, the audio data processed by the computing unit needs to be transmitted from the left temple to the right temple for playback, and the power from the right temple also needs to be transmitted to the left temple to power the computing unit. Thus, data and power transmission between the left and right temples is essential.
[0041] Figure 1 This is a schematic diagram of a smart glasses structure as an example of existing technology. Figure 1 As shown, the smart glasses include end A (left temple), frame, end B (right temple), left hinge, and right hinge. The battery and working components are located in the left temple and / or right temple. Data signals and power are transmitted through end A to the left hinge, then to the frame, then to the right hinge, and finally to end B. Customized design of the frame and hinge results in a fixed shape, making frame replacement difficult, and also leads to decreased reliability and increased manufacturing costs.
[0042] The technical content provided in this application aims to solve the aforementioned technical problems in related technologies. In the embodiments of this application, smart glasses include a frame, a first temple, a second temple, and a connecting cord; the first temple is connected to one end of the frame, and the second temple is connected to the other end of the frame; the first temple and the second temple are connected by a connecting cord; the first temple and / or the second temple are provided with working components, and the connecting cord includes a transmission line used to transmit resources between the first temple and the second temple.
[0043] The working components of the smart glasses include, but are not limited to: a camera, a display module, a computing unit, a storage module, a speaker, a microphone, a voice module, a translation module, a navigation module, and a remaining battery power display unit. Depending on the required functions, some or all of these working components may be installed on the two temples of the smart glasses.
[0044] A transmission line is installed inside the connecting rope to transmit resources. There is no limit to the number of transmission lines; it can be one, two, or others. The transmitted resources include, but are not limited to, transmitting data signals and / or power between the two temples.
[0045] In other embodiments, working components can be respectively set in the two temples of the smart glasses. For example, the first temple of the smart glasses houses a camera and a display unit, while the second temple houses a computing unit. External images captured by the camera are transmitted to the computing unit for processing via a transmission line. The processed image is then transmitted back to the display module of the first temple via the transmission line for display. The transmission line facilitates the mutual transmission of data resources between the first and second temples.
[0046] In other embodiments, a storage module can be provided in the second temple to store the calculated data obtained from the image captured by the camera and processed by the computing unit. The data in the storage module can then be transmitted to the display module for display via a transmission line. The transmission line facilitates the mutual transmission of data resources between the first and second temples.
[0047] In other embodiments, working components can be provided on the two temples of the smart glasses respectively. As an example, a computing unit and a first speaker are provided in the first temple of the smart glasses, and a second speaker is provided in the second temple. The computing unit processes the audio data and transmits it to the first speaker on the same side, and then transmits it to the second speaker on the second temple through a transmission line, thereby ensuring the consistency of audio data between the left and right temples.
[0048] In other embodiments, batteries can be installed in the first temple and the second temple respectively, and power transmission between the two temples can be realized through a transmission line. For example, when the battery in the first temple is low on power, the batteries can be mutually charged through the transmission line to ensure voltage balance between the left and right temples and avoid performance differences of working components or equipment damage due to voltage differences.
[0049] Optionally, a working component can be set in one of the temples. The following description takes the setting of a working component in the first temple as an example. The first temple is equipped with a voice module and a navigation module. The voice module in the first temple receives the user's navigation voice commands and transmits the navigation voice commands to the navigation module through a transmission line. The navigation module provides navigation to the user according to the navigation voice commands and uses the voice module to perform voice navigation.
[0050] Optionally, battery units are provided on both the first and second temples, or the battery units can be provided on the connecting rope. There is no limitation on this. The battery units supply power to the working parts. This application connects the two temples through a transmission line, and transmits the voltage of the temple with the larger battery voltage to the other temple with the smaller battery voltage through the transmission line, thereby ensuring voltage balance between the left and right temples and avoiding performance differences of the working parts or equipment damage caused by voltage differences.
[0051] It should be noted that the above situation is only an example, and there are other application scenarios of working components that are not shown here, all of which are within the protection scope of this application.
[0052] The solution of this application uses a connecting rope to connect the first temple and the second temple, and sets a transmission line in the connecting rope. The transmission line can transmit the transmission resources between the two temples, thereby realizing the power and data transmission between the two temples. The transmission resources include, but are not limited to, battery transmission resources, data signals, etc. When the transmission resource is a battery transmission resource, it ensures the voltage balance between the left and right temples and avoids performance differences or equipment damage caused by voltage differences. When the transmission resource is a data transmission resource, it maintains the consistency of data between the left and right temples.
[0053] The technical solution of this application and how it solves the above-mentioned technical problems will be described in detail below with specific embodiments. These specific embodiments can be combined with each other, and the same or similar concepts or processes may not be described again in some embodiments. The embodiments of this application will be described below with reference to the accompanying drawings.
[0054] Figure 2 This is a schematic diagram of the structure of a smart glasses provided in Embodiment 1 of this application, as shown below. Figure 2 As shown, this embodiment provides a smart glasses, including: a frame 1, a first temple 2, a second temple 3, and a connecting cord 4;
[0055] The first temple 2 is connected to one end of the frame 1, and the second temple 3 is connected to the other end of the frame 1; the first temple 2 and the second temple 3 are connected by a connecting rope 4; a working part is provided in the first temple 2 and / or the second temple 3;
[0056] The connecting rope 4 includes a transmission line for transmitting resources between the first temple 2 and the second temple 3.
[0057] Specifically, the smart glasses provided in this example have a structural design including a frame 1, a first temple 2, a second temple 3, and a connecting strap 4. The frame 1 has two ends, and the temples are divided into a left temple and a right temple, connected to the two ends of the frame 1. For example, if the first temple 2 is the left temple, connected to one end of the frame 1, then the second temple 3 is the right temple, connected to the other end of the frame 1; if the first temple 2 is the right temple, connected to one end of the frame 1, then the second temple 3 is the left temple, connected to the other end of the frame 1.
[0058] Correspondingly, the first temple 2 and the second temple 3 are connected by a connecting cord 4. This connection method not only enhances the stability of wearing the glasses but also provides important support for the functionality of the smart glasses. In one example, the connecting cord 4 is a flexible cord with an outer soft plastic layer. The use of a flexible cord allows the connecting cord 4 to bend and stretch naturally during wearing, thereby better adapting to the user's head contour and movement needs, improving wearing comfort and stability. For example, when the user turns their head or engages in daily activities, the flexible cord can effectively reduce discomfort caused by rigid connections, while preventing damage to the internal transmission lines due to excessive pulling. The outer soft plastic layer not only provides additional protection but also enhances the durability and abrasion resistance of the connecting cord 4. The material of the soft plastic layer typically has good flexibility and impact resistance, effectively resisting external physical damage such as scratches and collisions, thereby extending the service life of the connecting cord 4. In addition, the soft plastic layer can also provide a certain degree of insulation and waterproofing, further protecting the internal transmission lines from environmental factors. In the above example, while improving the overall structural stability of the smart glasses, it also ensures their reliability and functionality in various usage scenarios.
[0059] Specifically, the connecting cord 4 contains a transmission line for transmitting resources, such as power, data signals, or other control signals, between the first temple 2 and the second temple 3. The working components can be installed in the first temple 2 and / or the second temple 3; for example, they can be installed only in the first temple 2, or only in the second temple 3, or in both the first and second temples 3. The specific location can be selected according to functional requirements. For instance, if the working component is a miniature camera, it can be installed at the front of the first temple 2 to capture image information in the user's field of vision; if the working component is a sensor or microphone, it can be installed in the middle or rear of the temple for better sound or environmental data acquisition. Through the transmission line within the connecting cord 4, these working components can communicate with each other, enabling the transmission and processing of data and power.
[0060] In this example, a connecting cord is used to connect the first temple and the second temple, and a transmission line is set in the connecting cord. The transmission line can transmit resources between the two temples, thereby realizing power and data transmission between the two temples.
[0061] Optionally, the transmission resources include data signals, and the transmission line includes data lines;
[0062] The first temple 2 is provided with a first data interface, and the second temple 3 is provided with a second data interface. The first data interface is connected to one end of the data cable, and the second data interface is connected to the other end of the data cable. The data cable is used to transmit data signals between the first temple 2 and the second temple 3.
[0063] In this example, the transmission resource includes data signals, and the transmission line includes a dedicated data cable for data signal transmission. There can be one or multiple data cables; this is not limited. The presence of the data cable enables the smart glasses to achieve efficient data exchange between their different working components. Specifically, the first temple 2 has a first data interface, and the second temple 3 has a second data interface. The first and second data interfaces can be located at any position on the first temple 2 and the second temple 3, depending on actual needs. For example, they can be located inside or outside the first temple 2 and the second temple 3, at the front or rear of the first temple 2 and the second temple 3; this is not limited. The first data interface is connected to one end of the data cable, and the second data interface is connected to the other end of the data cable, thus forming a complete data signal transmission channel.
[0064] Specifically, through this data cable connection, the various working components of the smart glasses can communicate with each other between the first temple 2 and the second temple 3. For example, the first temple 2 may integrate a camera or sensor, while the second temple 3 may contain a processor or storage module. The data cable allows for the rapid transmission of captured image data or sensor information between these components, enabling real-time processing and feedback. The working components in the first temple 2 can transmit data to the working components in the second temple 3 via the data cable, and vice versa. This example solution enables the smart glasses to support complex application scenarios, such as augmented reality display, real-time navigation, and health monitoring, providing users with rich interactive experiences and practical functions. Furthermore, this modular interface design facilitates future functional expansion and hardware upgrades, allowing the smart glasses to continuously improve their performance and application scope as technology advances.
[0065] In other embodiments, the transmission resource includes power, and the transmission line includes a power line;
[0066] The first temple 2 is provided with a first power interface, and the second temple 3 is provided with a second power interface. The first power interface is connected to one end of the power cord, and the second power interface is connected to the other end of the power cord. The power cord is used to transmit power between the first temple 2 and the second temple 3.
[0067] In this example, power transmission is one of the key factors ensuring the proper functioning of all components in the smart glasses. Therefore, the transmission line includes a dedicated power cord for power transmission. There can be one or multiple power cords; this is not limited. The power cord is designed to efficiently transmit power between the first temple 2 and the second temple 3 to support the operation of the various components. Specifically, the first temple 2 has a first power interface, and the second temple 3 has a second power interface. The first and second power interfaces can be located anywhere on the first temple 2 and the second temple 3, depending on actual needs. For example, they can be located inside or outside the first temple 2 and the second temple 3, at the front or rear of the first temple 2 and the second temple 3; this is not limited. The first power interface is connected to one end of the power cord, and the second power interface is connected to the other end of the power cord, thus forming a complete power transmission channel. In conjunction with the foregoing example, in order to reduce the space used in the temples, the first power interface and the second power interface can be the same as the aforementioned first data interface and the second data interface. For example, the first power interface and the first data interface are the same interface, and one end of the data cable and the power cable are both connected to the aforementioned port. Similarly, the second power interface and the second data interface are the same interface, and the other end of the data cable and the power cable are both connected to the aforementioned interface. Both data transmission and power transmission can be achieved on a single interface.
[0068] Specifically, this power cord connection allows the various working components of the smart glasses to reliably share power between the first temple 2 and the second temple 3. For example, some working components are housed in the first temple 2, and others in the second temple 3. The power cord allows for efficient power transfer between these components, ensuring that all functional modules receive sufficient power support in different usage scenarios. This example solution not only improves the battery life of the smart glasses but also provides power assurance for their stable operation in complex application scenarios.
[0069] In one example, the first temple 2 is provided with a first battery for supplying power to the working parts in the first temple 2; the second temple 3 is provided with a second battery for supplying power to the working parts in the second temple 3.
[0070] Specifically, the first temple 2 houses a first battery that provides power to the working components within it. This design allows the first temple 2 to independently support the operation of its internal components, such as sensors, processors, or other electronic modules. Similarly, the second temple 3 also houses a second battery to provide power to the working components within it. When the first battery is low on power, the second battery can power the first battery via a power cord in the connecting cord; conversely, when the second battery is low on power, the first battery can also power the second battery via the power cord in the connecting cord. This dual-battery configuration not only improves the overall battery life of the smart glasses but also enhances the system's reliability and flexibility. By placing batteries in both temples, the smart glasses can maintain stable performance in different usage scenarios, while also providing greater design flexibility for future functional expansion and hardware upgrades. This independent power supply strategy reduces reliance on a single power source and minimizes energy loss during power transmission, thereby improving the overall energy efficiency and user experience of the smart glasses.
[0071] In one example, the working component includes a remaining power display unit connected to a first battery and a second battery. The remaining power display unit is used to display the remaining power of the working component in the first temple 2 and the second temple 3, as well as the remaining power of the first battery and the second battery.
[0072] Specifically, the working components in the first temple 2 include a remaining battery power display unit. This display unit is connected to the first and second batteries and plays a crucial role in monitoring and displaying the power status of the smart glasses. By connecting to the batteries in both temples, the remaining battery power display unit can obtain real-time power information from the batteries in the first temple 2 and second temple 3, as well as the working components in both temples. This design allows users to check the power status of the smart glasses at any time, ensuring a clear understanding of the battery level during use. The remaining battery power display unit may use an intuitive interface, such as an LED indicator, a digital display, or directly present power information through the smart glasses' augmented reality interface. The remaining battery power display unit can be located in either the first temple 2 or the second temple 3; there is no restriction, as long as it is connected to the first and second batteries.
[0073] This example solution not only enhances the user experience, enabling users to better manage their smart glasses usage time, but also provides alerts when the battery level drops below a preset threshold, reminding users to charge promptly and preventing functional interruptions due to depleted battery. Furthermore, this design provides data support for battery management and energy optimization, helping to extend battery life and improve the overall energy efficiency of the smart glasses.
[0074] In other embodiments, the connecting cord 4 is equipped with a third battery, which provides power to the working components in the first temple 2 and the second temple 3. Specifically, the connecting cord 4 is equipped with a third battery, which can be located inside or outside the connecting cord 4, without limitation. This not only optimizes the weight distribution of the smart glasses but also improves power management efficiency. The main function of the third battery is to provide a stable power supply to the working components in the first temple 2 and the second temple 3, which may include microprocessors, sensors, wireless communication modules, and displays. By integrating the battery into the connecting cord 4, additional power support can be provided without increasing the burden on the temples, maintaining the portability and comfort of the smart glasses, while ensuring that the smart glasses maintain high performance during prolonged use. In addition, the third battery in the connecting cord 4 can form an intelligent power management system with the battery in the temples, which can dynamically allocate power according to the usage of the smart glasses to ensure that the smart glasses receive optimal power support in different operating modes. For example, in high-performance mode, the system can preferentially draw power from the third battery to extend the lifespan of the temple battery. In the examples above, not only are the functionality and user experience of smart glasses improved, but longer battery life and stronger performance are also achieved while ensuring comfort.
[0075] In one example, the working components include a camera, a display module, and a computing unit;
[0076] The camera is used to capture images, the captured images are processed by the computing unit to obtain the display results, and the display module displays the display results.
[0077] The acquired images are transmitted to the computing unit via a data cable, and / or the display results are transmitted to the display module via a data cable.
[0078] In this example, the working components in the temple of the mirror include a camera, a display module, and a computing unit. The camera is the core component for image acquisition, responsible for capturing image information of the target scene. After initial acquisition, this image information is transmitted to the computing unit via a data cable. The computing unit is the core processing center of the entire system. It receives the raw image data from the camera and uses a series of algorithms and processing procedures to analyze, process, and optimize the image, ultimately obtaining a displayable result. This processing may include various operations such as image recognition, feature extraction, color correction, and resolution adjustment. The processed display result is then transmitted back to the display module via the data cable. The display module is responsible for presenting the image information processed by the computing unit in an intuitive way, allowing the user to clearly see the processed image content. Throughout the entire workflow, the data cable serves as the key transmission channel connecting the various components, ensuring that image data and display results can be transmitted efficiently and accurately between the components, thereby achieving the complete functionality of the system.
[0079] Specifically, in a monocular display scenario, in one example, the computing module and display module are located on the same temple, while the camera is located on the other temple. The image captured by the camera is transmitted via data cable to the computing module for processing and then displayed by the display module. In another example, the computing module and display module are located on different temples, while the camera is located on either temple. The image captured by the camera is transmitted to the computing module for processing and then transmitted via data cable to the display module for display. In a binocular display scenario, in one example, the camera and display module can be placed on opposite temples, while the computing module is located on either temple. The image captured by each camera is transmitted via data cable to the computing module for processing. The computing module calculates the disparity information based on the principle of binocular stereoscopic vision and generates image pairs suitable for binocular display. Then, the processed images are transmitted to the display modules on both temples, providing different images for the left and right eyes, thereby achieving stereoscopic display.
[0080] In the example above, the image captured by the camera is transmitted to the computing unit via a data cable. The computing unit processes the image, using image processing algorithms for analysis and recognition. The processed display result is then transmitted to the display module via the data cable, ensuring rapid information presentation and thus enabling data transmission between the two temples.
[0081] Based on the aforementioned example, the working component also includes a storage module; one end of the connecting rope 4 is provided with a fourth battery, and the other end of the connecting rope 4 is provided with a fifth battery; the third battery, the fourth battery, and the fifth battery are connected in parallel to form a power module;
[0082] The camera, display module, computing unit, and storage module are all connected to the power module;
[0083] Images captured by the camera are transmitted to the storage module via a data cable for storage.
[0084] In this example, the working component may also include a storage module, the integration of which significantly enhances the functionality and data management of the smart glasses. The storage module can be located in either the first temple 2 or the second temple 3; no limitation is made here. Images captured by the camera can be transmitted not only to the computing unit for real-time processing via a data cable, but also directly to the storage module for storage. This design allows users to easily save and manage large amounts of image data without relying on external devices for data backup or storage. This built-in storage capability provides users with greater flexibility, allowing them to access and review previously captured images at any time when needed, facilitating subsequent analysis, sharing, or further processing.
[0085] Correspondingly, the fourth and fifth batteries in connecting cord 4 are connected in parallel with the third battery to form a power module, providing continuous and stable power support for the camera, display module, computing unit, and storage module. This power configuration not only optimizes the energy management of the smart glasses but also improves their battery life, ensuring that all components can operate efficiently for extended periods. Through the parallel power module design, the smart glasses achieve higher power efficiency and reliability; even if one battery fails, the smart glasses can still operate normally. This example solution improves the reliability of the smart glasses and the user experience, enabling them to provide stable performance and long-lasting power support in various application scenarios.
[0086] In one example, the working components include a first speaker, a second speaker, a first microphone, and a second microphone;
[0087] The first and second microphones are used to receive audio data and transmit the audio data to the first and second speakers via data cables for synchronized playback.
[0088] Specifically, the coordinated operation of the first speaker, second speaker, first microphone, and second microphone provides users with a high-quality audio experience. The first speaker and first microphone are located on one temple, while the second speaker and second microphone are located on the other temple. The first and second microphones are responsible for receiving audio data from the environment. These microphones are able to capture clear sound signals and transmit the audio data to the first and second speakers via data cables. Through this design, the audio signal can be played synchronously in both speakers, creating a stereo effect and enhancing the user's auditory experience. This configuration is not only suitable for telephone calls and receiving voice commands, but also for playing music or other audio content, providing users with an immersive audio experience. In addition, the dual-microphone design helps improve the accuracy of audio signal capture and reduces background noise interference, thereby ensuring that the audio signal transmitted to the speakers is clear and accurate.
[0089] Figure 3 A schematic diagram of the structure of a smart glasses provided as an example in this application is shown below. Figure 3 As shown, the first temple 2 includes a first sub-temper and a second sub-temper. One end of the first sub-temper is connected to the frame 1, and the second sub-temper is detachably connected to the other end of the first sub-temper. The second sub-temper is equipped with a sixth battery. And / or the second temple 3 includes a third sub-temper and a fourth sub-temper. One end of the fourth sub-temper is connected to the frame 1, and the fourth sub-temper is detachably connected to the other end of the third sub-temper. The fourth sub-temper is equipped with a seventh battery.
[0090] Specifically, the first temple 2 consists of two parts: a first sub-temple and a second sub-temple. One end of the first sub-temple is directly connected to the frame 1. This connection ensures the firmness and stability between the temple and the frame 1, and also provides basic support for the entire structure of the smart glasses. The other end of the first sub-temple is connected to the second sub-temple in a detachable manner. The advantage of this design is that it allows users to easily replace the second sub-temple as needed, such as for quick replacement in case of damage, or to replace the sub-temple with one of different functions or appearances according to different usage scenarios. The second sub-temple also has a sixth battery for providing power to the working components. Placing the battery unit on the second sub-temple makes full use of the space of the temple while avoiding additional weight burden on the frame 1, maintaining the overall balance and wearing comfort of the glasses.
[0091] Correspondingly, the structure of the second temple 3 is similar to that of the first temple 2, also consisting of two sub-temples: a third sub-temple and a fourth sub-temple. One end of the third sub-temple is connected to the frame 1, serving a supporting and connecting function. The other end of the fourth sub-temple is also detachably connected to the third sub-temple, a design similar to the second sub-temple of the first temple 2, providing convenient replacement and maintenance. The fourth sub-temple houses a seventh battery for powering the working components. This design not only facilitates daily maintenance and cleaning but also provides possibilities for personalized customization. Users can choose temples of different materials, colors, or functions to suit different usage scenarios or personal styles. Furthermore, the detachable connection design offers advantages in transportation and storage; users can remove the temples when not in use, reducing space occupation and lowering the risk of damage. Overall, this modular design enhances the practicality and user experience of smart glasses, making them more adaptable and personalized.
[0092] The smart glasses provided in this embodiment include a frame, a first temple, a second temple, and a connecting cord. The first temple is connected to one end of the frame, and the second temple is connected to the other end of the frame. The first temple and the second temple are connected by the connecting cord. A working component is provided in the first temple and / or the second temple. The connecting cord includes a transmission line used to transmit transmission resources between the first temple and the second temple. The solution of this application uses a connecting cord to connect the first temple and the second temple, and a transmission line is provided in the connecting cord. The transmission line can transmit transmission resources between the two temples, thereby realizing power and data transmission between the two temples.
[0093] The connecting cord 4 in the smart glasses of the foregoing embodiments can be placed in a smart glasses case for charging. This application also provides a smart glasses case. Figure 4 This is a schematic diagram illustrating the structure of a smart glasses case, as an example of this application. Figure 4As shown, it includes an eyeglass case body 5, a first slot 51 and a second slot 52; the first slot 51 is used to place the first plug of the connecting rope 4, and the second slot 52 is used to place the second plug of the connecting rope 4.
[0094] Specifically, the smart glasses case consists of a case body 5, a first slot 51, and a second slot 52. The case body 5 is the main structure of the entire smart glasses case, and its design typically uses sturdy yet lightweight materials to ensure effective protection against external impacts during transport. Furthermore, the interior of the case body 5 may also be lined with soft padding or shock-absorbing material to further enhance its protective performance. The primary function of the first slot 51 and the second slot 52 is to house the connector 4 for the smart glasses. The connector 4 is an important component of the smart glasses, typically used to connect the left and right temples to enable data transmission or power supply between the two temples.
[0095] Correspondingly, the first slot 51 and the second slot 52 are designed inside or on the side of the glasses case body, and are used to hold the first plug and the second plug of the connecting rope 4, respectively. This design not only provides a fixed storage location for the plug, preventing it from swinging around inside the glasses case or colliding with other parts, but also allows the battery in the connecting rope 4 to be charged by the battery in the glasses case.
[0096] Still Figure 4 As shown, the smart glasses case is equipped with a charging interface 53 and a built-in battery 54. The charging interface 53 is used to receive external power and charge the built-in battery 54, and the built-in battery 54 is used to provide power to the power module.
[0097] Specifically, the charging port 53 and the built-in battery 54 are the core power management components, working together to provide stable power support for the smart glasses and related devices. The charging port 53 is typically located on the outside or side of the glasses case, using a common charging standard, allowing users to easily connect to an external power source (such as a power adapter, power bank, or computer USB port) via a common charging cable. The built-in battery 54 provides stable power support for the entire system. When an external power source is connected through the charging port 53, the built-in battery 54 automatically begins charging. Once fully charged, it can provide a stable power output to the smart glasses' power module. This design not only solves the problem of frequent charging during use but also optimizes the overall energy consumption of the device through centralized power management. For example, when the smart glasses are placed in the glasses case, the built-in battery 54 can charge the glasses' battery or other electronic components via the built-in connection line or wireless charging module, ensuring the glasses are fully charged for the next use.
[0098] In another example, the smart glasses case also includes a third slot 55 and a fourth slot 56. Figure 5This is a schematic diagram illustrating the structure of a smart glasses case, as an example of this application. Figure 5 As shown, the smart glasses case has a third slot 55 for placing the first temple 2 and a fourth slot 56 for placing the second temple 3. The built-in battery 54 only needs to charge one temple and charges the other temple via a connecting cord.
[0099] In summary, the smart glasses case provided in this embodiment achieves efficient charging, improved battery life, and convenient use through the design of the charging interface and built-in battery, greatly optimizing the user experience.
[0100] The following three specific examples illustrate in detail the various structures of the smart glasses provided in this application.
[0101] Figure 6 This is a schematic diagram illustrating the structure of a smart glasses example provided in this application. Figure 6 As shown, the smart glasses include: a frame 1, a first temple 2 (i.e., the right temple), and a second temple 3 (i.e., the left temple). The first temple 2 is provided with a working component 6, including: a camera 63, a display module 64, a first battery 21, a first speaker 65, a first microphone 67, and a first data interface 22;
[0102] The second temple 3 is provided with a working component 6, including: a computing unit 61, a storage module 62, a second battery 31, a second speaker 66, a second microphone 68, and a second data interface 32.
[0103] In practical applications, the first battery 21 provides power to the camera 63, display module 64, first speaker 65 and first microphone 67 in the first temple 2, and the second battery 31 provides power to the computing unit 61, storage module 62, second speaker 66 and second microphone 68.
[0104] Specifically, camera 63 is used to capture images, display module 64 is used to display images, first speaker 65 is used to play audio, and first microphone 67 is used to receive audio data. Computation unit 61 is used to process the captured images, storage module 62 is used to store the captured images, second speaker 66 is used to play audio, and second microphone 68 is used to receive audio data. First data interface 22 and second data interface 32 are used for subsequent connection with the connecting rope.
[0105] Figure 7 This is a schematic diagram illustrating the structure of a smart glasses example provided in this application. Figure 7 As shown, the smart glasses include: a frame 1, a first temple 2 (i.e., the right temple), and a second temple 3 (i.e., the left temple).
[0106] The first temple 2 is provided with a working component 6, including: a camera 63, a display module 64, a first battery 21, a first speaker 65, a first microphone 67, and a first data interface 22;
[0107] The second temple 3 is provided with a working component 6, including: a computing unit 61, a storage module 62, a second battery 31, a second speaker 66, a second microphone 68, and a second data interface 32.
[0108] A connecting cord 4 is provided between the two temples. The connecting cord 4 includes a power cord and a data cord, and also includes a third battery 41. One end of the connecting cord 4 is connected to the first data interface 22, and the other end of the connecting cord 4 is connected to the second data interface 32.
[0109] In practical applications, the first battery 21 provides power to the camera 63, display module 64, first speaker 65, and first microphone 67 in the first temple 2, while the second battery 31 provides power to the computing unit 61, storage module 62, second speaker 66, and second microphone 68. When the first battery 21 is low on power, the second battery 31 can provide power to the first battery 21 via the connecting rope 4; alternatively, when the second battery 31 is low on power, the first battery 21 can provide power to the second battery 31 via the connecting rope 4; or, the third battery 41 in the connecting rope 4 can also provide power to both the first battery 21 and the second battery 31.
[0110] Specifically, the camera 63 in the first temple 2 captures images, and the captured images are transmitted to the computing unit 61 in the second temple 3 via the connecting rope 4 to obtain the calculation results. The calculation results are then transmitted to the display module 64 in the first temple 2 via the connecting rope 4 for image display. Alternatively, the captured images can be directly stored in the storage module 62 in the second temple 3.
[0111] The first microphone 67 in the first temple 2 and the second microphone 68 in the second temple 3 simultaneously receive audio data and transmit the audio data through the connecting rope 4 to the first speaker 65 in the first temple 2 and the second speaker 66 in the second temple 3 for synchronous playback.
[0112] Figure 8 This is a schematic diagram illustrating the structure of a smart glasses example provided in this application. Figure 8 As shown, the smart glasses include: a frame 1, a first temple 2 (i.e., the right temple), and a second temple 3 (i.e., the left temple).
[0113] The first temple 2 is provided with a working component 6, including: a camera 63, a display module 64, a first speaker 65, a first microphone 67, and a first data interface 22;
[0114] The second temple 3 is provided with a working component 6, including: a computing unit 61, a storage module 62, a second speaker 66, a second microphone 68, and a second data interface 32.
[0115] A connecting cord 4 is provided between the two temples. The connecting cord 4 includes a power cord and a data cord, as well as a third battery 41, a fourth battery 42, and a fifth battery 43. One end of the connecting cord 4 is connected to the first data interface 22, and the other end of the connecting cord 4 is connected to the second data interface 32.
[0116] In practical applications, the third battery 41, the fourth battery 42, and the fifth battery 43 are connected in parallel to form a power module, which provides power to the camera 63, display module 64, first speaker 65, and first microphone 67 in the first temple 2. At the same time, it also provides power to the computing unit 61, storage module 62, second speaker 66, and second microphone 68 in the second temple 3.
[0117] Specifically, the camera 63 in the first temple 2 captures images, and the captured images are transmitted to the computing unit 61 in the second temple 3 via the connecting rope 4 to obtain the calculation results. The calculation results are then transmitted to the display module 64 in the first temple 2 via the connecting rope 4 for image display. Alternatively, the captured images can be directly stored in the storage module 62 in the second temple 3.
[0118] The first microphone 67 in the first temple 2 and the second microphone 68 in the second temple 3 simultaneously receive audio data and transmit the audio data through the connecting rope 4 to the first speaker 65 in the first temple 2 and the second speaker 66 in the second temple 3 for synchronous playback.
[0119] Other embodiments of this application will readily occur to those skilled in the art upon consideration of the specification and practice of the utility models disclosed herein. This application is intended to cover any variations, uses, or adaptations of this application that follow the general principles of this application and include common knowledge or customary techniques in the art not disclosed herein. The specification and examples are to be considered exemplary only, and the true scope and spirit of this application are indicated by the claims.
[0120] It should be understood that this application is not limited to the precise structure described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The scope of this application is limited only by the appended claims.
Claims
1. A smart glass, characterized by, The application relates to a glasses frame, which comprises a glasses frame, a first glasses leg, a second glasses leg and a connecting rope. The first glasses leg is connected with one end of the glasses frame, the second glasses leg is connected with the other end of the glasses frame, the first glasses leg and the second glasses leg are connected through the connecting rope, and working components are arranged in the first glasses leg and / or the second glasses leg. The connecting rope comprises a transmission line which is used for transmitting transmission resources between the first glasses leg and the second glasses leg. The transmission resources comprise data signals, and the transmission line comprises a data line.
2. The smart glasses of claim 1, wherein, The first glasses leg is provided with a first data interface, the second glasses leg is provided with a second data interface, the first data interface is connected with one end of the data line, the second data interface is connected with the other end of the data line, and the data line is used for transmitting data signals between the first glasses leg and the second glasses leg. The transmission resources comprise power supplies, and the transmission line comprises a power supply line.
3. The smart glasses of claim 2, wherein, The first glasses leg is provided with a first power supply interface, the second glasses leg is provided with a second power supply interface, the first power supply interface is connected with one end of the power supply line, the second power supply interface is connected with the other end of the power supply line, and the power supply line is used for transmitting power supplies between the first glasses leg and the second glasses leg. The first glasses leg is provided with a first battery which is used for providing power supplies for working components in the first glasses leg, and the second glasses leg is provided with a second battery which is used for providing power supplies for working components in the second glasses leg.
4. The smart glasses of claim 3, wherein, The working components comprise a residual power display unit which is connected with the first battery and the second battery and is used for displaying residual power of the working components in the first glasses leg and the second glasses leg and the first battery and the second battery.
5. The smart glasses of claim 4, wherein, The connecting rope is provided with a third battery which is used for providing power supplies for working components in the first glasses leg and the second glasses leg.
6. The smart glasses of claim 4, wherein, The working components comprise a camera, a display module and a computing unit.
7. The smart glasses of claim 6, wherein, The camera is used for collecting images, the collected images are processed by the computing unit to obtain display results, and the display module displays the display results. The collected images are transmitted to the computing unit through the data line, and / or the display results are transmitted to the display module through the data line. The working components further comprise a storage module, one end of the connecting rope is provided with a fourth battery, the other end of the connecting rope is provided with a fifth battery, the third battery, the fourth battery and the fifth battery are connected in parallel to form a power supply module.
8. The smart glasses of claim 7, wherein, The camera, the display module, the computing unit and the storage module are connected with the power supply module. The collected images are stored in the storage module through the data line. The working components comprise a first loudspeaker, a second loudspeaker, a first microphone and a second microphone.
9. The smart glasses of claim 2, wherein, The first microphone and the second microphone are used for receiving audio data and transmitting the audio data to the first loudspeaker and the second loudspeaker through the data line for synchronous playing. 10. The smart glasses of claim 1, wherein, The first temple includes a first sub-temple and a second sub-temple, one end of the first sub-temple is connected with the frame, the second sub-temple is detachably connected with the other end of the first sub-temple, and the second sub-temple is provided with a sixth battery; and / or The second temple includes a third sub-temple and a fourth sub-temple, one end of the third sub-temple is connected with the frame, the fourth sub-temple is detachably connected with the other end of the third sub-temple, and the fourth sub-temple is provided with a seventh battery.
11. The smart glasses of any one of claims 1-10, wherein, The connecting rope is a flexible rope, and the outer part of the flexible rope is wrapped with a soft plastic layer.
12. An intelligent glasses case, characterized in that, Comprise: The eyeglass case body, the first slot and the second slot; the first slot is used for placing the first plug of the connecting rope, and the second slot is used for placing the second plug of the connecting rope.
13. The smart eyeglass case of claim 12, wherein, The smart eyeglass case is provided with a charging interface and a built-in battery, the charging interface is used for receiving an external power supply to charge the built-in battery, and the built-in battery is used for providing power supply to the power module.