WO2019056814A1 - 智能眼镜及其信息采集及传输方法、计算机可读存储介质 - Google Patents

智能眼镜及其信息采集及传输方法、计算机可读存储介质 Download PDF

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Publication number
WO2019056814A1
WO2019056814A1 PCT/CN2018/091371 CN2018091371W WO2019056814A1 WO 2019056814 A1 WO2019056814 A1 WO 2019056814A1 CN 2018091371 W CN2018091371 W CN 2018091371W WO 2019056814 A1 WO2019056814 A1 WO 2019056814A1
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Prior art keywords
smart glasses
brain wave
signal
infrared signal
wave signal
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PCT/CN2018/091371
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English (en)
French (fr)
Inventor
袁晖
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深圳市科迈爱康科技有限公司
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Publication of WO2019056814A1 publication Critical patent/WO2019056814A1/zh

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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/011Arrangements for interaction with the human body, e.g. for user immersion in virtual reality
    • G06F3/013Eye tracking input arrangements
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/011Arrangements for interaction with the human body, e.g. for user immersion in virtual reality
    • G06F3/015Input arrangements based on nervous system activity detection, e.g. brain waves [EEG] detection, electromyograms [EMG] detection, electrodermal response detection
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F2203/00Indexing scheme relating to G06F3/00 - G06F3/048
    • G06F2203/01Indexing scheme relating to G06F3/01
    • G06F2203/012Walk-in-place systems for allowing a user to walk in a virtual environment while constraining him to a given position in the physical environment

Definitions

  • the present application relates to the field of smart wearable devices, and in particular, to a smart glasses and a method for collecting and transmitting the same, and a computer readable storage medium.
  • Smart glasses also known as smart glasses, refer to programs that are independent of the operating system, such as smart phones, that can be installed by software, games, and other software service providers. You can add schedules, map navigation, and A general term for such glasses that interact with friends, take photos and videos, and make video calls with friends, and can access wireless networks through mobile communication networks.
  • Smart glasses are one of the wearable smart devices that have been proposed in the past few years and have good prospects. They are easy to use and small in size. It is becoming more and more common for users to watch business presentations through smart glasses.
  • the user In the prior art, when a user wants to perform a photographing operation, the user generally needs to perform the manual operation, the user experience is poor, and the frequently used scene is also limited.
  • Google Glass Google Glass often needs to speak voice commands in public, so in an outdoor noisy environment, it is impossible to share instant photos with language commands on social networks, and the wearing scene is very limited.
  • the main purpose of the present application is to provide a smart glasses and a method for collecting and transmitting the same, and a computer readable storage medium, which aims to solve the technical problem that the smart glasses can be automatically photographed, the structure is simple, and the application is wide.
  • the present application provides a method for collecting and transmitting information of smart glasses.
  • the method for photographing smart glasses includes the following steps: collecting brain wave signals and/or near-infrared signals; and outputting according to brain wave signals and/or near-infrared signals.
  • Corresponding operation instructions operate according to the operation instructions.
  • the method comprises: training the smart glasses to form a correspondence between the brain wave signal and/or the near-infrared signal and the operation instruction; according to the brain wave signal and/or
  • the step of outputting the corresponding operation command by the near-infrared signal includes: outputting an operation instruction according to the brain wave signal and/or the near-infrared signal and the corresponding relationship.
  • the operation instruction comprises one of a photographing instruction, a recording instruction, an instruction to connect to the network, an instruction to emit illumination, and an instruction to obtain a brain health monitoring report.
  • the step of collecting a brain wave signal and/or a near-infrared signal comprises: acquiring a brain wave signal and/or a near-infrared signal of a wearer of the smart glasses; or receiving a wearer of the second smart glasses different from the smart glasses Brain wave signal and / or near infrared signal.
  • the method before receiving the brain wave signal and/or the near-infrared signal of the wearer of the second smart glasses different from the smart glasses, the method includes: establishing brain wave communication with the second smart glasses different from the smart glasses.
  • the step of establishing brainwave communication with the second smart glasses different from the smart glasses comprises: receiving a near infrared signal requesting communication establishment of the second smart glasses different from the smart glasses; detecting the request to establish communication near The brainwave signal of the response generated by the infrared signal; the response of the brain wave signal is transmitted to the near-infrared signal of the response and the brainwave communication is established.
  • the present application further provides a smart glasses
  • the smart glasses include: an information collecting module, configured to collect brain wave signals and/or near-infrared signals; and a microprocessor connected to the information collecting module for The brain wave signal and/or the near-infrared signal output corresponding operation instructions; the operation module is connected to the microprocessor for operating according to the operation instruction.
  • the smart glasses further include: a training module connected to the information collecting module; the training module is configured to train the smart glasses to form a correspondence between the brain wave signal and/or the near-infrared signal and the operation instruction; the microprocessor is configured to The electroencephalogram signal and/or the near-infrared signal and the corresponding relationship output operation instructions.
  • the present application further provides a smart glasses, including: a memory, a processor, and a computer program stored on the memory and operable on the processor, the computer program being executed by the processor to implement the foregoing smart glasses The steps of the information collection and transmission method.
  • the present application further provides a computer readable storage medium, where the computer readable storage medium stores a computer program, and when the computer program is executed by the processor, the steps of the foregoing information collection and transmission method of the smart glasses are implemented. .
  • a smart glasses an information collecting and transmitting method thereof, and a computer readable storage medium, which are configured to collect brain wave signals and/or near-infrared signals, and output corresponding operation instructions according to brain wave signals and/or near-infrared signals. According to the operation instruction, the automatic photographing of the smart glasses can be realized, the structure is simple, and the application is wide.
  • FIG. 1 is a schematic structural diagram of smart glasses in a hardware operating environment according to an embodiment of the present application
  • FIG. 2 is a schematic flow chart of a method for collecting and transmitting information of smart glasses according to an embodiment of the present application
  • FIG. 3 is a schematic diagram of establishing communication between a smart glasses and a second smart glasses according to an embodiment of the present application
  • FIG. 4 is a schematic structural view of a smart eyeglass according to a first embodiment of the present application.
  • FIG. 5 is a schematic structural diagram of a smart glasses according to a second embodiment of the present application.
  • the main solution of the embodiment of the present application is: a wearer of the smart glasses collects a brain wave signal and/or a near-infrared signal when performing a certain operation; and outputs a corresponding operation instruction according to the brain wave signal and/or the near-infrared signal; According to the operation instruction, no complicated camera structure or sensor is needed, the structure is simple, and the application is wide, and the automatic photographing of the smart glasses can be realized.
  • the present application provides a solution, which can realize automatic photographing of the smart glasses, has a simple structure and is widely used. .
  • FIG. 1 is a schematic structural diagram of a smart glasses according to an embodiment of the present application.
  • the smart glasses of the embodiments of the present application may include a processor 1001, such as a CPU, a network interface 1004, a user interface 1003, a memory 1005, and a communication bus 1002.
  • the communication bus 1002 is used to implement connection communication between these components.
  • User interface 1003 can include a standard wired interface, a wireless interface.
  • the network interface 1004 can optionally include a standard wired interface, a wireless interface (such as a WI-FI interface).
  • the memory 1005 may be a high speed RAM memory or a stable memory (non-volatile) Memory), such as disk storage.
  • the memory 1005 can also optionally be a storage device independent of the aforementioned processor 1001.
  • the smart glasses may further include a camera, a sensor, a recording module, a Bluetooth (WIFI) connection module, a lighting module, a brain health monitoring module, and the like.
  • sensors such as light sensors, motion sensors, and other sensors.
  • the light sensor may include an ambient light sensor and a proximity sensor, wherein the ambient light sensor can adjust the brightness of the display screen according to the brightness of the ambient light.
  • the camera is used for taking pictures, and the Bluetooth (WIFI) connection module is used for communication with other smart glasses.
  • the recording module is used to acquire the voice of the wearer, and perform corresponding actions according to the voice, such as taking a photo.
  • the light emitting module can be used for illuminating illumination, displaying a picture or photo taken to the wearer, or for displaying prompt information and the like.
  • the brain health monitoring module is used to detect the brain health of the wearer, generate a brain health monitoring/report, and determine the reliability of the detected brain wave signal.
  • FIG. 1 does not constitute a definition of smart glasses, may include more or fewer components than illustrated, or combine some components, or different component arrangements.
  • an operating system may be included in the memory 1005 as a computer storage medium.
  • a network communication module may be included in the memory 1005 as a computer storage medium.
  • a user interface module may be included in the memory 1005 as a computer storage medium.
  • the network interface 1004 is mainly used to connect to the background server and perform data communication with the background server;
  • the user interface 1003 is mainly used to connect the client (user end), and perform data communication with the client;
  • the processor 1001 can be used to call a computer program stored in the memory 1005 and perform the following operations:
  • processor 1001 can call a computer program stored in the memory 1005 and also perform the following operations:
  • training the smart glasses Before the step of collecting the brain wave signal and/or the near-infrared signal, training the smart glasses to form a correspondence relationship between the brain wave signal and/or the near-infrared signal and the operation instruction;
  • the step of outputting a corresponding operation instruction according to the brain wave signal and/or the near-infrared signal includes: outputting an operation instruction according to the brain wave signal and/or the near-infrared signal and the corresponding relationship.
  • processor 1001 can call a computer program stored in the memory 1005 and also perform the following operations:
  • a brain wave signal and/or a near-infrared signal of a wearer of the second smart glasses different from the smart glasses is received.
  • processor 1001 can call a computer program stored in the memory 1005 and also perform the following operations:
  • Brainwave communication is established with a second smart glasses different from smart glasses.
  • processor 1001 can call a computer program stored in the memory 1005 and also perform the following operations:
  • the responsive NIR signal is transmitted according to the responsive EEG signal and brainwave communication is established.
  • an embodiment of the present invention provides a method for collecting and transmitting information of smart glasses, where the information collection and transmission method of the smart glasses includes:
  • step S10 a brain wave signal and/or a near-infrared signal are collected.
  • the wearer of the smart glasses generates a corresponding brainwave signal and/or a near-infrared signal when the smart glasses are to be used for some operation, and in step S10, the wearer of the smart glasses is collected.
  • the brain wave signal of the smart glasses wearer is detected; or the brain wave signal of the second smart glasses wearer that communicates with the smart glasses is received.
  • the second smart glasses establish brainwave communication with the smart glasses, and the second smart glasses transmit brain wave signals to the smart glasses, and the smart glasses detect brain wave signals emitted by the second smart glasses.
  • the smart glasses can be used for photographing, recording, connecting to the network, illuminating lighting, brain health monitoring/reporting, etc., without the user issuing a voice command, and without manual operation by the user.
  • the operation instruction includes one of a photographing instruction, a recording instruction, an instruction to connect to the network, an instruction to emit illumination, and an instruction to acquire a brain health monitoring report, which is specifically set according to the wearer of the smart glasses.
  • step S10 brainwave communication is established with the second smart glasses different from the smart glasses.
  • the method includes:
  • Step 1 Receive a near-infrared signal requesting communication to be established by the second smart glasses different from the smart glasses.
  • the second smart glasses transmit a near-infrared signal requesting to establish communication to the smart glasses to request to establish brain wave communication to the smart glasses.
  • Step 2 A brainwave signal of a response generated in response to the request to establish a near-infrared signal of the communication is detected.
  • the smart glasses receive and respond to the request to establish a near-infrared signal of the communication, and generate a question signal, the wearer of the smart glasses confirms consent or rejects the communication, and generates a response brain wave signal.
  • Step 3 Transmit the near-infrared signal of the response according to the responding brain wave signal and establish brainwave communication.
  • the smart glasses emit a responsive near-infrared signal to the second smart glasses according to the responding brainwave signal to reject or establish brainwave communication.
  • the smart glasses may also transmit a near-infrared signal requesting to establish communication to other smart glasses to request to establish brain wave communication with other smart glasses.
  • a near-infrared signal requesting to establish communication to other smart glasses to request to establish brain wave communication with other smart glasses.
  • the specific brainwave communication establishment process is the same as the foregoing, and will not be described again.
  • step S11 a corresponding operation instruction is output according to the brain wave signal and/or the near-infrared signal.
  • the smart glasses are trained to form a correspondence between the brain wave signal and/or the near-infrared signal and the operation command.
  • the smart glasses wearer can “train” the smart glasses according to the brain wave signal and the near-infrared signal, and form an operation instruction for each different operation, so that the operation is quietly completed.
  • an operation command is output based on the brain wave signal and/or the near-infrared signal and the corresponding relationship. Specifically, the corresponding relationship between the brain wave signal and/or the near-infrared signal and the operation instruction is searched according to the brain wave signal and/or the near-infrared signal, and the corresponding operation instruction is acquired.
  • step S12 the operation is performed according to the operation instruction.
  • the embodiment of the present application passes the collected brain wave signal and/or the near-infrared signal; then outputs an operation instruction according to the brain wave signal and/or the near-infrared signal; and operates according to the operation instruction, so that the wearer of the smart glasses can pass the brain wave
  • the signal and/or the near-infrared signal realize automatic photographing of the smart glasses, and the structure is simple and widely used.
  • an embodiment of the present application further provides a smart glasses.
  • the smart glasses include an information collecting module 11, a microprocessor 12, and an operation module 13 based on the embodiment shown in FIG.
  • the information collection module 11 is configured to collect brain wave signals and/or near-infrared signals.
  • the microprocessor 12 is connected to the information acquisition module 11 for outputting corresponding operation instructions according to the brain wave signal and/or the near-infrared signal.
  • the operational module 13 is coupled to the microprocessor 12 for operation in accordance with operational instructions.
  • the wearer of the smart glasses generates a corresponding brainwave signal and/or a near-infrared signal when the smart glasses are to be applied for some operation.
  • the information collecting module 11 is configured to: collect a brain wave signal and/or a near-infrared signal of a wearer of the smart glasses; or receive a brain wave signal and/or a near-infrared signal of a wearer of the second smart glasses different from the smart glasses.
  • the brain wave signal of the smart glasses wearer is detected; or the brain wave signal of the second smart glasses wearer that communicates with the smart glasses is received.
  • the second smart glasses establish brainwave communication with the smart glasses, and the second smart glasses transmit brain wave signals to the smart glasses, and the smart glasses detect brain wave signals emitted by the second smart glasses.
  • the smart glasses wearer generates a brain wave signal and/or a near-infrared signal that wants to perform some operation when a certain operation is desired, and the information collecting module 11 collects the brain wave that wants to perform some operation.
  • Signal and / or near infrared signals are examples of the smart glasses wearer.
  • the second smart glasses establish brainwave communication with the smart glasses, and the second smart glasses wearer generates a brain wave signal and/or a near infrared signal that wants to perform some operation when the user wants to perform some operation, and the second smart glasses will
  • the brain wave signal and/or the near-infrared signal that is intended to perform a certain operation is transmitted to the smart glasses, and the information collecting module 11 detects the brain wave signal and/or the near-infrared signal that is intended to perform a certain operation.
  • the smart glasses can be used for photographing, recording, connecting to the network, illuminating lighting, brain health monitoring/reporting, etc., without the user issuing a voice command, and without manual operation by the user.
  • the operation instruction includes one of a photographing instruction, a recording instruction, an instruction to connect to the network, an instruction to emit illumination, and an instruction to acquire a brain health monitoring report, which is specifically set according to the wearer of the smart glasses.
  • the smart glasses before the information collecting module 11 collects the brain wave signal and/or the near-infrared signal, the smart glasses establish brain wave communication with the second smart glasses different from the smart glasses, specifically, as shown in FIG. 5 .
  • the smart glasses further include: a communication establishing module 14 connected to the information collecting module 11.
  • the communication establishing module 14 is configured to establish brain wave communication with the second smart glasses different from the smart glasses.
  • the communication establishing module 14 includes a receiving unit 141, a brain wave detecting unit 142, and a transmitting unit 143.
  • the receiving unit 141 is connected to the information collecting module 11 for receiving a near infrared signal requesting communication establishment of the second smart glasses different from the smart glasses. .
  • the brain wave detecting unit 142 is connected to the receiving unit 141 for detecting a response brainwave signal generated in response to the request to establish a communication near-infrared signal; the transmitting unit 143 is connected to the brain wave detecting unit 142 for: The brainwave signal emits a near-infrared signal that responds to reject or establish brainwave communication.
  • the second smart glasses transmit a near-infrared signal requesting to establish communication to the smart glasses to request to establish brain wave communication to the smart glasses.
  • the receiving unit 141 receives and responds to the request to establish a near-infrared signal of the communication, and generates a question signal, and the wearer of the smart glasses confirms to agree or reject the communication, and generates a response brain wave signal.
  • the transmitting unit 143 transmits the responsive near-infrared signal to the second smart glasses according to the responding brain wave signal to reject or establish brain wave communication.
  • the information collecting module 11 can not only collect the brain waves of the wearer of the smart glasses, but also receive the brain wave signals of the wearer from the second smart glasses, and analyze In the future, a short-distance "silent communication" between two or more smart glasses wearers is achieved.
  • the transmitting module 143 may also send a near-infrared signal requesting to establish communication to other smart glasses to request to establish brain wave communication with other smart glasses.
  • the specific brainwave communication establishment process is the same as the foregoing, and will not be described again.
  • the smart glasses further include: a training module 15 connected to the information collecting module 11.
  • the training module 15 is configured to train the smart glasses to form a correspondence between the brain wave signal and/or the near-infrared signal and the operation command.
  • the training module 15 can “train” the smart glasses according to the brain wave signal and the near-infrared signal to form an operation instruction for each different operation, so that the quiet operation is completed silently.
  • the microprocessor 12 is operative to output an operational command based on the brain wave signal and/or the near infrared signal and the corresponding relationship. Specifically, the microprocessor 12 searches for a correspondence between the brain wave signal and/or the near-infrared signal and the operation command according to the brain wave signal and/or the near-infrared signal, and acquires a corresponding operation instruction.
  • the brain wave signal and/or the near-infrared signal that wants to perform some operation are collected by the information collecting module 11; the microprocessor 12 outputs the brain wave signal and/or the near-infrared signal according to the operation.
  • the operation module 13 performs photographing according to the operation instruction, so that the wearer of the smart glasses can realize automatic photographing of the smart glasses through the brain wave signal and/or the near-infrared signal, and has a simple structure and wide application.
  • the wearer of the smart glasses may perform the manual operation directly when performing some operation, and details are not described herein again.
  • the smart glasses are similar in appearance to ordinary glasses, and the operation module 13 is a camera disposed on the smart glasses.
  • the information collection module 11 and the microprocessor 12 are integrated in the eyeglass frame.
  • the smart glasses also include a camera module, a recording module, a Bluetooth (WIFI) connection module, a light module, a brain health monitoring module, and the like, which are also integrated in the eyeglass frame.
  • the camera module, the camera is used for taking pictures.
  • the Bluetooth (WIFI) connection module is used to communicate with other smart glasses.
  • the recording module is used to acquire the voice of the wearer, and perform corresponding actions according to the voice, such as taking a photo.
  • the light emitting module can be used for illuminating illumination, displaying a picture or photo taken to the wearer, or for displaying prompt information and the like.
  • the brain health monitoring module is used to detect the brain health of the wearer, generate a brain health monitoring/report, and determine the reliability of the detected brain wave signal.
  • an embodiment of the present application further provides a computer readable storage medium, where the computer readable storage medium stores a computer program, and when the computer program is executed by the processor, the following operations are implemented:
  • training the smart glasses Before the step of collecting the brain wave signal and/or the near-infrared signal, training the smart glasses to form a correspondence relationship between the brain wave signal and/or the near-infrared signal and the operation instruction;
  • the step of outputting a corresponding operation instruction according to the brain wave signal and/or the near-infrared signal includes: outputting an operation instruction according to the brain wave signal and/or the near-infrared signal and the corresponding relationship.
  • a brain wave signal and/or a near-infrared signal of a wearer of the second smart glasses different from the smart glasses is received.
  • Brainwave communication is established with a second smart glasses different from smart glasses.
  • processor 1001 can call a computer program stored in the memory 1005 and also perform the following operations:
  • the responsive NIR signal is transmitted according to the responsive EEG signal and brainwave communication is established.
  • the technical solution of the present application which is essential or contributes to the prior art, may be embodied in the form of a software product stored in a storage medium (such as ROM/RAM as described above). , a disk, an optical disk, including a number of instructions for causing a terminal device (which may be a mobile phone, a computer, a server, an air conditioner, or a network device, etc.) to perform the methods described in the various embodiments of the present application.
  • a terminal device which may be a mobile phone, a computer, a server, an air conditioner, or a network device, etc.

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Abstract

本申请公开了一种智能眼镜的信息采集及传输方法,包括:采集脑电波信号和/或近红外信号;根据脑电波信号和/或近红外信号输出对应的操作指令;根据操作指令进行操作。本申请还公开了一种智能眼镜、计算机可读存储介质。

Description

智能眼镜及其信息采集及传输方法、计算机可读存储介质
技术领域
本申请涉及智能可穿戴设备技术领域,尤其涉及一种智能眼镜及其信息采集及传输方法、计算机可读存储介质。
背景技术
智能眼镜,也称智能镜,是指像智能手机一样,具有独立的操作系统,可以由用户安装软件、游戏等软件服务商提供的程序,可通过语音或动作操控完成添加日程、地图导航、与好友互动、拍摄照片和视频、与朋友展开视频通话等功能,并可以通过移动通讯网络来实现无线网络接入的这样一类眼镜的总称。
智能眼镜是近几年被提出而且前景较好的可穿戴智能设备之一,其具有使用简便,体积较小等特点,用户通过智能眼镜观看业务呈现变得越来越普遍。现有技术中,用户想要进行拍照操作时,一般需要用户手动进行操作,用户体验很差,并且经常使用场景也受限。如谷歌眼镜(Google Glass)往往需要在公共场合说出语音指令,如此在户外嘈杂的环境下,无法在社交网络上用语言命令分享即刻拍下的照片,佩戴场景非常受限。
发明内容
本申请的主要目的在于提供一种智能眼镜及其信息采集及传输方法、计算机可读存储介质,旨在解决能够实现智能眼镜的自动拍照,结构简单,应用广泛的技术问题。
为实现上述目的,本申请提供一种智能眼镜的信息采集及传输方法,智能眼镜的拍照方法包括以下步骤:采集脑电波信号和/或近红外信号;根据脑电波信号和/或近红外信号输出对应的操作指令;根据操作指令进行操作。
可选地,采集脑电波信号和/或近红外信号的步骤之前,包括:对智能眼镜进行训练,形成脑电波信号和/或近红外信号与操作指令的对应关系;根据脑电波信号和/或近红外信号输出对应的操作指令的步骤,包括:根据脑电波信号和/或近红外信号以及对应关系输出操作指令。
可选地,操作指令包括拍照指令、录音指令、连接网络的指令、发光照明的指令、获取脑部健康监测报告的指令的其中之一。
可选地,采集脑电波信号和/或近红外信号的步骤,包括:采集智能眼镜的佩戴者的脑电波信号和/或近红外信号;或者接收不同于智能眼镜的第二智能眼镜的佩戴者的脑电波信号和/或近红外信号。
可选地,接收不同于智能眼镜的第二智能眼镜的佩戴者的脑电波信号和/或近红外信号之前,包括:与不同于智能眼镜的第二智能眼镜建立脑电波通讯。
可选地,与不同于智能眼镜的第二智能眼镜建立脑电波通讯的步骤,包括:接收不同于智能眼镜的第二智能眼镜的请求建立通讯的近红外信号;检测到响应请求建立通讯的近红外信号而产生的应答的脑电波信号;根据应答的脑电波信号发射应答的近红外信号并建立脑电波通讯。
此外,为实现上述目的,本申请还提供一种智能眼镜,智能眼镜包括:信息采集模块,用于采集脑电波信号和/或近红外信号;微处理器,与信息采集模块连接,用于根据脑电波信号和/或近红外信号输出对应的操作指令;操作模块,与微处理器连接,用于根据操作指令进行操作。
可选地,智能眼镜还包括:与信息采集模块连接的训练模块;训练模块用于对智能眼镜进行训练,形成脑电波信号和/或近红外信号与操作指令的对应关系;微处理器用于根据脑电波信号和/或近红外信号以及对应关系输出操作指令。
此外,为实现上述目的,本申请还提供一种智能眼镜,包括:存储器、处理器及存储在存储器上并可在处理器上运行的计算机程序,计算机程序被处理器执行时实现前述的智能眼镜的信息采集及传输方法的步骤。
此外,为实现上述目的,本申请还提供一种计算机可读存储介质,计算机可读存储介质上存储有计算机程序,计算机程序被处理器执行时实现前述的智能眼镜的信息采集及传输方法的步骤。
本申请实施例提出的一种智能眼镜及其信息采集及传输方法、计算机可读存储介质,采集脑电波信号和/或近红外信号;根据脑电波信号和/或近红外信号输出对应的操作指令;根据操作指令进行操作,能够实现智能眼镜的自动拍照,结构简单,应用广泛。
附图说明
图1是本申请实施例方案涉及的硬件运行环境的智能眼镜的结构示意图;
图2是本申请实施例的智能眼镜的信息采集及传输方法的流程示意图;
图3是本申请实施例的智能眼镜与第二智能眼镜建立通讯的示意图;
图4是本申请第一实施例的智能眼镜的结构示意图;
图5是本申请第二实施例的智能眼镜的结构示意图。
本申请目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
具体实施方式
应当理解,此处所描述的具体实施例仅仅用以解释本申请,并不用于限定本申请。
本申请实施例的主要解决方案是:智能眼镜的佩戴者在想进行某种操作时,采集脑电波信号和/或近红外信号;根据脑电波信号和/或近红外信号输出对应的操作指令;根据操作指令进行操作,其间不需要复杂的相机结构或者传感器,结构简单,应用广泛,能够实现智能眼镜的自动拍照。
由于现有技术的佩戴者想通过智能眼镜进行某种操作时通常需要进行繁复的人工操作,使用环境受限,本申请提供一种解决方案,能够实现智能眼镜的自动拍照,结构简单,应用广泛。
如图1所示,图1是本申请实施例方案涉及的智能眼镜的结构示意图。
本申请实施例的智能眼镜可以包括:处理器1001,例如CPU,网络接口1004,用户接口1003,存储器1005,通信总线1002。其中,通信总线1002用于实现这些组件之间的连接通信。用户接口1003可以包括标准的有线接口、无线接口。网络接口1004可选的可以包括标准的有线接口、无线接口(如WI-FI接口)。存储器1005可以是高速RAM存储器,也可以是稳定的存储器(non-volatile memory),例如磁盘存储器。存储器1005可选的还可以是独立于前述处理器1001的存储装置。
可选地,智能眼镜还可以包括摄像头、传感器、录音模块、蓝牙(WIFI)连接模块、发光模块、脑部健康监测模块等等。其中,传感器比如光传感器、运动传感器以及其他传感器。具体地,光传感器可包括环境光传感器及接近传感器,其中,环境光传感器可根据环境光线的明暗来调节显示屏的亮度。摄像头用于进行拍照,蓝牙(WIFI)连接模块用于与其他的智能眼镜进行通讯。录音模块用于获取佩戴者的语音,并根据该语音执行相应的动作,如拍照等。发光模块可以用于发光照明,显示向佩戴者提供拍摄的画面或照片,或者用于显示提示信息等。脑部健康监测模块用于检测佩戴者的脑部健康,生成脑部健康监测/报告,进而确定检测到的脑电波信号的可靠性。
本领域技术人员可以理解,图1中示出的智能眼镜结构并不构成对智能眼镜的限定,可以包括比图示更多或更少的部件,或者组合某些部件,或者不同的部件布置。
如图1所示,作为一种计算机存储介质的存储器1005中可以包括操作系统、网络通信模块、用户接口模块以及计算机程序。
在图1所示的终端中,网络接口1004主要用于连接后台服务器,与后台服务器进行数据通信;用户接口1003主要用于连接客户端(用户端),与客户端进行数据通信;而处理器1001可以用于调用存储器1005中存储的计算机程序,并执行以下操作:
采集脑电波信号和/或近红外信号;
根据脑电波信号和/或近红外信号输出对应的操作指令;
根据操作指令进行操作。
进一步地,处理器1001可以调用存储器1005中存储的计算机程序,还执行以下操作:
采集脑电波信号和/或近红外信号的步骤之前,对智能眼镜进行训练,形成脑电波信号和/或近红外信号与操作指令的对应关系;
根据脑电波信号和/或近红外信号输出对应的操作指令的步骤,包括:根据脑电波信号和/或近红外信号以及对应关系输出操作指令。
进一步地,处理器1001可以调用存储器1005中存储的计算机程序,还执行以下操作:
采集智能眼镜的佩戴者的脑电波信号和/或近红外信号;或者
接收不同于智能眼镜的第二智能眼镜的佩戴者的脑电波信号和/或近红外信号。
进一步地,处理器1001可以调用存储器1005中存储的计算机程序,还执行以下操作:
与不同于智能眼镜的第二智能眼镜建立脑电波通讯。
进一步地,处理器1001可以调用存储器1005中存储的计算机程序,还执行以下操作:
接收不同于智能眼镜的第二智能眼镜的请求建立通讯的近红外信号;
检测到响应请求建立通讯的近红外信号而产生的应答的脑电波信号;
根据应答的脑电波信号发射应答的近红外信号并建立脑电波通讯。
参照图2,本申请一实施例提供一种智能眼镜的信息采集及传输方法,所述智能眼镜的信息采集及传输方法包括:
步骤S10,采集脑电波信号和/或近红外信号。
在本申请实施方式中,智能眼镜的佩戴者在想要应用智能眼镜进行某种操作时,产生对应操作的脑电波信号和/或近红外信号,在步骤S10中,采集智能眼镜的佩戴者的脑电波信号和/或近红外信号;或者接收不同于智能眼镜的第二智能眼镜的佩戴者的脑电波信号和/或近红外信号。具体地,可以是检测到智能眼镜佩戴者的脑电波信号;或者接收到与该智能眼镜通讯的第二智能眼镜佩戴者的脑电波信号。或者,第二智能眼镜与该智能眼镜建立脑电波通讯,第二智能眼镜将脑电波信号发射至该智能眼镜,该智能眼镜检测到该第二智能眼镜发射的脑电波信号。
在本申请实施方式中,智能眼镜可以用于拍照、录音、连接网络、发光照明、脑部健康监测/报告等,无需使用者发出语音指令,也无需使用者进行手工操作。操作指令包括拍照指令、录音指令、连接网络的指令、发光照明的指令、获取脑部健康监测报告的指令的其中之一,具体根据智能眼镜的佩戴者需要设置。
因此,在步骤S10之前,与不同于该智能眼镜的第二智能眼镜建立脑电波通讯,具体地,如图3所示,包括:
步骤1:接收不同于智能眼镜的第二智能眼镜的请求建立通讯的近红外信号。
具体地,第二智能眼镜向该智能眼镜发射请求建立通讯的近红外信号以向该智能眼镜请求建立脑电波通讯。
步骤2:检测到响应请求建立通讯的近红外信号而产生的应答的脑电波信号。
该智能眼镜接收并响应该请求建立通讯的近红外信号,产生提问信号,该智能眼镜的佩戴者确认同意或拒绝通讯,产生应答的脑电波信号。
步骤3:根据应答的脑电波信号发射应答的近红外信号并建立脑电波通讯。
该智能眼镜根据该应答的脑电波信号发射应答的近红外信号至第二智能眼镜以拒绝或建立脑电波通讯。
在本申请一实施例中,智能眼镜还可以向其他智能眼镜发射请求建立通讯的近红外信号,以请求与其他智能眼镜建立脑电波通讯。具体的脑电波通讯建立过程与前述相同,此不再赘述。
步骤S11,根据脑电波信号和/或近红外信号输出对应的操作指令。
在步骤S10之前,对智能眼镜进行训练,形成脑电波信号和/或近红外信号与操作指令的对应关系。智能眼镜佩戴者在对智能眼镜进行初始化过程中,可以依据脑电波信号和近红外信号对智能眼镜进行“训练”,形成对每一项不同操作的操作指令,让其悄然无声地完成各项操作。对应地,在步骤S11中,根据脑电波信号和/或近红外信号以及对应关系输出操作指令。具体地,根据脑电波信号和/或近红外信号查找脑电波信号和/或近红外信号与操作指令的对应关系,获取对应的操作指令。
步骤S12,根据操作指令进行操作。
本申请实施例通过采集的脑电波信号和/或近红外信号;然后根据该脑电波信号和/或近红外信号输出操作指令;并根据操作指令进行操作,使智能眼镜的佩戴者能够通过脑电波信号和/或近红外信号实现智能眼镜的自动拍照,结构简单,应用广泛。
在本申请实施例中,当然也可以是智能眼镜的佩戴者想通过智能眼镜进行某种操作时直接手动操作进行操作,在此不再赘述。
参照图4,本申请一实施例还提供一种智能眼镜,基于上述图2所示的实施例,所述智能眼镜包括:信息采集模块11、微处理器12以及操作模块13。信息采集模块11用于采集脑电波信号和/或近红外信号。微处理器12与信息采集模块11连接,用于根据脑电波信号和/或近红外信号输出对应的操作指令。操作模块13与微处理器12连接,用于根据操作指令进行操作。
在本申请实施方式中,智能眼镜的佩戴者在想要应用智能眼镜进行某种操作时,产生对应操作的脑电波信号和/或近红外信号。信息采集模块11用于:采集智能眼镜的佩戴者的脑电波信号和/或近红外信号;或者接收不同于智能眼镜的第二智能眼镜的佩戴者的脑电波信号和/或近红外信号。具体地,可以是检测到智能眼镜佩戴者的脑电波信号;或者接收到与该智能眼镜通讯的第二智能眼镜佩戴者的脑电波信号。或者,第二智能眼镜与该智能眼镜建立脑电波通讯,第二智能眼镜将脑电波信号发射至该智能眼镜,该智能眼镜检测到该第二智能眼镜发射的脑电波信号。
在本申请实施方式,该智能眼镜佩戴者在想进行某种操作时产生想进行某种操作的脑电波信号和/或近红外信号,信息采集模块11采集到该想进行某种操作的脑电波信号和/或近红外信号。或者,第二智能眼镜与该智能眼镜建立脑电波通讯,第二智能眼镜佩戴者在想进行某种操作时产生想进行某种操作的脑电波信号和/或近红外信号,第二智能眼镜将该想进行某种操作的脑电波信号和/或近红外信号发射至该智能眼镜,信息采集模块11检测到该想进行某种操作的脑电波信号和/或近红外信号。
在本申请实施方式中,智能眼镜可以用于拍照、录音、连接网络、发光照明、脑部健康监测/报告等,无需使用者发出语音指令,也无需使用者进行手工操作。操作指令包括拍照指令、录音指令、连接网络的指令、发光照明的指令、获取脑部健康监测报告的指令的其中之一,具体根据智能眼镜的佩戴者需要设置。
在本申请实施方式中,在信息采集模块11采集脑电波信号和/或近红外信号之前,智能眼镜与不同于该智能眼镜的第二智能眼镜建立脑电波通讯,具体地,如图5所示,智能眼镜还包括:与信息采集模块11连接的通讯建立模块14。通讯建立模块14用于与不同于智能眼镜的第二智能眼镜建立脑电波通讯。通讯建立模块14包括接收单元141、脑电波检测单元142以及发射单元143,接收单元141与信息采集模块11连接,用于:接收不同于智能眼镜的第二智能眼镜的请求建立通讯的近红外信号。脑电波检测单元142与接收单元141连接,用于:检测到响应请求建立通讯的近红外信号而产生的应答的脑电波信号;发射单元143与脑电波检测单元142连接,用于:根据应答的脑电波信号发射应答的近红外信号以拒绝或建立脑电波通讯。
具体地,第二智能眼镜向该智能眼镜发射请求建立通讯的近红外信号以向该智能眼镜请求建立脑电波通讯。接收单元141接收并响应该请求建立通讯的近红外信号,产生提问信号,该智能眼镜的佩戴者确认同意或拒绝通讯,产生应答的脑电波信号。发射单元143根据该应答的脑电波信号发射应答的近红外信号至第二智能眼镜以拒绝或建立脑电波通讯。第二智能眼镜与该智能眼镜建立脑电波通讯之后,信息采集模块11不但可以采集该智能眼镜的佩戴者本人的脑电波,而且可以接收来自第二智能眼镜的佩戴者的脑电波信号,经过解析以后,实现两位或以上智能眼镜佩戴者之间的短距离的“无声通讯”。
在本申请实施例中,发射模块143还可以向其他智能眼镜发射请求建立通讯的近红外信号,以请求与其他智能眼镜建立脑电波通讯。具体的脑电波通讯建立过程与前述相同,此不再赘述。
在本申请一实施例中,智能眼镜还包括:与信息采集模块11连接的训练模块15。训练模块15用于对智能眼镜进行训练,形成脑电波信号和/或近红外信号与操作指令的对应关系。智能眼镜佩戴者在对智能眼镜进行初始化过程中,训练模块15可以依据脑电波信号和近红外信号对智能眼镜进行“训练”,形成对每一项不同操作的操作指令,让其悄然无声地完成各项操作。对应地,微处理器12用于根据脑电波信号和/或近红外信号以及对应关系输出操作指令。具体地,微处理器12根据脑电波信号和/或近红外信号查找脑电波信号和/或近红外信号与操作指令的对应关系,获取对应的操作指令。
本申请实施例通过信息采集模块11采集到想进行某种操作的脑电波信号和/或近红外信号;微处理器12根据该想进行某种操作的脑电波信号和/或近红外信号输出操作指令;操作模块13根据操作指令进行拍照,使得智能眼镜的佩戴者能够通过脑电波信号和/或近红外信号实现智能眼镜的自动拍照,结构简单,应用广泛。
在本申请实施例中,当然也可以是智能眼镜的佩戴者想进行某种操作时直接手动操作进行操作,在此不再赘述。
智能眼镜在外形上与普通眼镜相似,操作模块13为设置在智能眼镜上的摄像头。信息采集模块11、微处理器12集成于眼镜框架内。智能眼镜还包括也集成于眼镜框架内的拍照模块、录音模块、蓝牙(WIFI)连接模块、发光模块、脑部健康监测模块等等。拍照模块,即摄像头,用于进行拍照。蓝牙(WIFI)连接模块用于与其他的智能眼镜进行通讯。录音模块用于获取佩戴者的语音,并根据该语音执行相应的动作,如拍照等。发光模块可以用于发光照明,显示向佩戴者提供拍摄的画面或照片,或者用于显示提示信息等。脑部健康监测模块用于检测佩戴者的脑部健康,生成脑部健康监测/报告,进而确定检测到的脑电波信号的可靠性。
此外,本申请一实施例还提出一种计算机可读存储介质,所述计算机可读存储介质上存储有计算机程序,所述计算机程序被处理器执行时实现如下操作:
采集脑电波信号和/或近红外信号;
根据脑电波信号和/或近红外信号输出对应的操作指令;
根据操作指令进行操作。
进一步地,所述计算机程序被处理器执行时还实现如下操作:
采集脑电波信号和/或近红外信号的步骤之前,对智能眼镜进行训练,形成脑电波信号和/或近红外信号与操作指令的对应关系;
根据脑电波信号和/或近红外信号输出对应的操作指令的步骤,包括:根据脑电波信号和/或近红外信号以及对应关系输出操作指令。
进一步地,所述计算机程序被处理器执行时还实现如下操作:
采集智能眼镜的佩戴者的脑电波信号和/或近红外信号;或者
接收不同于智能眼镜的第二智能眼镜的佩戴者的脑电波信号和/或近红外信号。
进一步地,所述计算机程序被处理器执行时还实现如下操作:
与不同于智能眼镜的第二智能眼镜建立脑电波通讯。
进一步地,处理器1001可以调用存储器1005中存储的计算机程序,还执行以下操作:
接收不同于智能眼镜的第二智能眼镜的请求建立通讯的近红外信号;
检测到响应请求建立通讯的近红外信号而产生的应答的脑电波信号;
根据应答的脑电波信号发射应答的近红外信号并建立脑电波通讯。
需要说明的是,在本文中,术语“包括”、“包含”或者其任何其他变体意在涵盖非排他性的包含,从而使得包括一系列要素的过程、方法、物品或者系统不仅包括那些要素,而且还包括没有明确列出的其他要素,或者是还包括为这种过程、方法、物品或者系统所固有的要素。在没有更多限制的情况下,由语句“包括一个……”限定的要素,并不排除在包括该要素的过程、方法、物品或者系统中还存在另外的相同要素。
上述本申请实施例序号仅仅为了描述,不代表实施例的优劣。
通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到上述实施例方法可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件,但很多情况下前者是更佳的实施方式。基于这样的理解,本申请的技术方案本质上或者说对现有技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在如上所述的一个存储介质(如ROM/RAM、磁碟、光盘)中,包括若干指令用以使得一台终端设备(可以是手机,计算机,服务器,空调器,或者网络设备等)执行本申请各个实施例所述的方法。
以上仅为本申请的优选实施例,并非因此限制本申请的专利范围,凡是利用本申请说明书及附图内容所作的等效结构或等效流程变换,或直接或间接运用在其他相关的技术领域,均同理包括在本申请的专利保护范围内。

Claims (10)

  1. 一种智能眼镜的信息采集及传输方法,其中,所述信息采集及传输方法包括以下步骤:
    采集脑电波信号和/或近红外信号;
    根据所述脑电波信号和/或所述近红外信号输出对应的操作指令;以及
    根据所述操作指令进行操作。
  2. 如权利要求1所述的智能眼镜的信息采集及传输方法,其中,
    所述采集脑电波信号和/或近红外信号的步骤之前,包括:
    对智能眼镜进行训练,形成脑电波信号和/或近红外信号与所述操作指令的对应关系;以及
    所述根据所述脑电波信号和/或所述近红外信号输出对应的操作指令的步骤,包括:根据所述脑电波信号和/或所述近红外信号以及所述对应关系输出所述操作指令。
  3. 如权利要求1所述的智能眼镜的信息采集及传输方法,其中,所述操作指令包括拍照指令、录音指令、连接网络的指令、发光照明的指令以及获取脑部健康监测报告的指令的其中之一。
  4. 如权利要求1所述的智能眼镜的信息采集及传输方法,其中,所述采集脑电波信号和/或近红外信号的步骤,包括:
    采集所述智能眼镜的佩戴者的脑电波信号和/或近红外信号;或者
    接收不同于所述智能眼镜的第二智能眼镜的佩戴者的脑电波信号和/或近红外信号。
  5. 如权利要求4所述的智能眼镜的信息采集及传输方法,其中,所述接收不同于所述智能眼镜的第二智能眼镜的佩戴者的脑电波信号和/或近红外信号之前,包括:与不同于所述智能眼镜的第二智能眼镜建立脑电波通讯。
  6. 如权利要求5所述的智能眼镜的信息采集及传输方法,其中,所述与不同于所述智能眼镜的第二智能眼镜建立脑电波通讯的步骤,包括:
    接收不同于所述智能眼镜的第二智能眼镜的请求建立通讯的近红外信号;
    检测到响应所述请求建立通讯的近红外信号而产生的应答的脑电波信号;以及
    根据所述应答的脑电波信号发射应答的近红外信号并建立脑电波通讯。
  7. 一种智能眼镜,其中,所述智能眼镜包括:
    信息采集模块,设置为采集脑电波信号和/或近红外信号;
    微处理器,与所述信息采集模块连接,设置为根据所述脑电波信号和/或所述近红外信号输出对应的操作指令;以及
    操作模块,与所述微处理器连接,设置为根据所述操作指令进行操作。
  8. 如权利要求7所述的智能眼镜,其中,所述智能眼镜还包括:与所述信息采集模块连接的训练模块;
    所述训练模块设置为对智能眼镜进行训练,形成脑电波信号和/或近红外信号与所述操作指令的对应关系;以及
    所述微处理器设置为根据所述脑电波信号和/或所述近红外信号以及所述对应关系输出所述操作指令。
  9. 一种智能眼镜,其中,所述智能眼镜包括:存储器、处理器及存储在所述存储器上并可在所述处理器上运行的计算机程序,所述计算机程序被所述处理器执行时实现如下步骤:
    采集脑电波信号和/或近红外信号;
    根据所述脑电波信号和/或所述近红外信号输出对应的操作指令;以及
    根据所述操作指令进行操作。
  10. 一种计算机可读存储介质,其中,所述计算机可读存储介质上存储有计算机程序,所述计算机程序被处理器执行时实现如下步骤:
    采集脑电波信号和/或近红外信号;
    根据所述脑电波信号和/或所述近红外信号输出对应的操作指令;以及
    根据所述操作指令进行操作。
PCT/CN2018/091371 2017-09-20 2018-06-15 智能眼镜及其信息采集及传输方法、计算机可读存储介质 WO2019056814A1 (zh)

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