WO2021248679A1 - 应用于车辆和tbox终端的绑定方法 - Google Patents

应用于车辆和tbox终端的绑定方法 Download PDF

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WO2021248679A1
WO2021248679A1 PCT/CN2020/108697 CN2020108697W WO2021248679A1 WO 2021248679 A1 WO2021248679 A1 WO 2021248679A1 CN 2020108697 W CN2020108697 W CN 2020108697W WO 2021248679 A1 WO2021248679 A1 WO 2021248679A1
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vehicle
information
handheld device
terminal
binding
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PCT/CN2020/108697
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English (en)
French (fr)
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王浩
潘东岭
丁慧敏
干伟
陈少华
叶子祥
钱锦
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南京朗禾智能控制研究院有限公司
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Publication of WO2021248679A1 publication Critical patent/WO2021248679A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/01Protocols
    • H04L67/12Protocols specially adapted for proprietary or special-purpose networking environments, e.g. medical networks, sensor networks, networks in vehicles or remote metering networks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W4/00Services specially adapted for wireless communication networks; Facilities therefor
    • H04W4/30Services specially adapted for particular environments, situations or purposes
    • H04W4/40Services specially adapted for particular environments, situations or purposes for vehicles, e.g. vehicle-to-pedestrians [V2P]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W4/00Services specially adapted for wireless communication networks; Facilities therefor
    • H04W4/30Services specially adapted for particular environments, situations or purposes
    • H04W4/40Services specially adapted for particular environments, situations or purposes for vehicles, e.g. vehicle-to-pedestrians [V2P]
    • H04W4/44Services specially adapted for particular environments, situations or purposes for vehicles, e.g. vehicle-to-pedestrians [V2P] for communication between vehicles and infrastructures, e.g. vehicle-to-cloud [V2C] or vehicle-to-home [V2H]

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  • the invention belongs to the field of vehicle networking application technology, and specifically relates to a binding method applied to a vehicle and a TBOX terminal.
  • the connotation of the Internet of Vehicles mainly refers to: the vehicle-mounted equipment on the vehicle uses wireless communication technology to effectively use all vehicle dynamic information in the information network platform to provide different functional services during vehicle operation.
  • the Internet of Vehicles realizes all-round network links between vehicles and cloud platforms, vehicles and vehicles, vehicles and roads, vehicles and people, and vehicles.
  • the Internet and in-vehicle mobile Internet are integrated.
  • the Internet of Vehicles is the use of sensor technology to perceive the status information of vehicles, and with the help of wireless communication networks and modern intelligent information processing technology to achieve intelligent management of traffic, as well as intelligent decision-making of traffic information services and intelligent control of vehicles.
  • the Internet of Vehicles shows the following Several features: 1.
  • the communication between the vehicle and the cloud platform means that the vehicle realizes information transmission with the Internet of Vehicles service platform through wireless communication technologies such as satellite wireless communication or mobile cellular, and accepts control instructions from the platform to share vehicle data in real time; 2.
  • the communication between the vehicle and the workshop refers to the realization of information exchange and information sharing between the vehicle and the vehicle, including vehicle status information such as vehicle location and driving speed, which can be used to judge the traffic flow on the road; 3.
  • the communication between the vehicle and the road refers to the use of the ground Road fixed communication facilities realize information exchange between vehicles and roads, which are used to monitor road surface conditions and guide vehicles to choose the best driving path; 4.
  • Vehicle-to-human communication means that users can communicate through Wi-Fi, Bluetooth, cellular and other wireless communications Means to communicate with the vehicle information, so that the user can monitor and control the vehicle through the corresponding mobile terminal equipment;
  • the communication between the equipment in the vehicle refers to the transmission of information and data between the equipment in the vehicle, which is used for real-time detection and monitoring of the status of the equipment. Operational control, establishing a digital in-vehicle control system.
  • the present invention provides a binding method applied to a vehicle and a TBOX terminal.
  • the objective of the present invention is to provide a binding method applied to vehicles and TBOX terminals in view of the deficiencies of the prior art.
  • the design of the operation process is reasonable, and the fast and stable binding of vehicles and TBOX terminals can be realized through small programs.
  • the binding method applied to a vehicle and a TBOX terminal includes the following steps: Step 1. Log in to a mobile handheld device pre-installed applet (APP), and log in through a registered user name and password. Step 2. Scan the QR code of the vehicle number with the pre-installed small program (APP) on the handheld device. Step 3. Scan the QR code of the TBOX terminal with the pre-installed small program (APP) of the handheld device. Step 4. The handheld device is pre-installed with a small program (APP) after scanning to complete the automatic binding of the vehicle and the TBOX terminal. Step 5. The handheld device is pre-installed with a small program (APP) to send the automatically bound data information completed after scanning to the back-end platform. Step 6. The back-end platform takes over the data binding, and saves the bound data information to the database of the back-end platform; among them, the mobile handheld device is pre-installed with a small program to interact with the back-end platform for binding data information.
  • APP small program
  • the mobile handheld device in step 1 is a mobile phone or an IPad, where the applet (APP) obtains the verification code through the mobile phone number and logs in to the applet, and then scans the QR code of the vehicle number.
  • Query vehicle information including vehicle manufacturer, brand, vehicle type, engine number, frame number, license plate number, power; in step 3, the small program (APP) scans the TBOX terminal QR code to query TBOX terminal terminal model, terminal number, terminal sim card number.
  • the handheld device pre-installed with a small program can query terminal information, vehicle information, positioning information, operation information, operation information, report information, and operation analysis information.
  • the database database of the back-end platform adopts a mongoDB database, which can store data above level T.
  • the beneficial effect of the binding method applied to the vehicle and the TBOX terminal of the present invention is that the design of the operation process is reasonable, and the fast and stable binding of the vehicle and the TBOX terminal can be realized through a small program, and it is compatible with
  • the back-end platform is used in conjunction to complete the accurate collection, analysis and processing of vehicle data information, ensuring the safety and reliability of vehicle intelligent control, and improving the efficiency of vehicle intelligent control in the Internet of Vehicles.
  • FIG. 1 is a schematic diagram of the data processing flow structure of the binding method applied to a vehicle and a TBOX terminal according to the present invention
  • Figures 2 and 3 are schematic diagrams of binding demonstrations of the binding method applied to a vehicle and a TBOX terminal according to the present invention.
  • the binding method applied to a vehicle and a TBOX terminal as shown in Fig. 1 includes the following steps.
  • Step 1. Log in to a mobile handheld device pre-installed applet (APP), and log in through a registered user name and password.
  • Step 2. Scan the QR code of the vehicle number with the pre-installed small program (APP) on the handheld device.
  • Step 3. Scan the QR code of the TBOX terminal with the pre-installed small program (APP) of the handheld device.
  • the handheld device is pre-installed with a small program (APP) after scanning to complete the automatic binding of the vehicle and the TBOX terminal.
  • the handheld device is pre-installed with a small program (APP) to send the automatically bound data information completed after scanning to the back-end platform.
  • Step 6. The back-end platform takes over the data binding and saves the bound data information to the database of the back-end platform; among them, the mobile handheld device is pre-installed with a small program to interact with the back-end
  • the mobile handheld device in step 1 is a mobile phone or an IPad, wherein the applet (APP) obtains the verification code through the mobile phone number and logs in to the applet, and scans the QR code of the vehicle number, which can be inquired after scanning.
  • applet APP
  • Vehicle information can be queried, including vehicle manufacturer, brand, vehicle type, engine number, frame number, license plate number, power; after scanning the QR code of the TBOX terminal in step 3, you can query TBOX
  • the terminal model, terminal number, and terminal sim card number of the terminal; and the handheld device pre-installed small program (APP) can query terminal information, vehicle information, positioning information, operation information, operation information, report information, and operation analysis information; and
  • the database library of the back-end platform uses mongoDB database, which can store data above level T.
  • Figures 2 and 3 are schematic diagrams of binding demonstrations of the binding method applied to the vehicle and the TBOX terminal of the present invention.
  • the binding method of the present invention applied to the vehicle and the TBOX terminal on the one hand, the design of the operation process is reasonable, the fast and stable binding of the vehicle and the TBOX terminal can be realized through a small program, and the vehicle can be completed in cooperation with the back-end platform.
  • Accurate collection, analysis and processing of data information ensure the safety and reliability of vehicle intelligent control and improve the efficiency of vehicle intelligent control in the Internet of Vehicles.
  • the other party’s vehicle is bound to the TBOX terminal and automatically bound by scanning the QR code. Save manpower and improve efficiency.

Abstract

本发明属于车联网应用技术领域,具体公开了应用于车辆和TBOX终端的绑定方法,包括以下步骤,步骤1、登录可移动手持设备预装小程序。步骤2、扫描车辆编号二维码。步骤3、扫描TBOX终端二维码。步骤4、车辆与TBOX终端的自动绑定。步骤5、手持设备预装小程序将扫描后完成的自动绑定数据信息发送到后端平台。步骤6、后端平台接手数据绑定,并保存绑定数据信息到后端平台的数据库。本发明的应用于车辆和TBOX终端的绑定方法的有益效果在于:其作业流程设计合理,通过小程序能实现车辆和TBOX终端的快速和稳定的绑定,并与后端平台相配合使用的完成车辆数据信息的精准采集、分析及处理,保证车辆智能控制的安全性、可靠性,提高车联网内车辆智能控制的效率。

Description

应用于车辆和TBOX终端的绑定方法 技术领域
本发明属于车联网应用技术领域,具体涉及应用于车辆和TBOX终端的绑定方法。
背景技术
车联网的内涵主要指:车辆上的车载设备通过无线通信技术,对信息网络平台中的所有车辆动态信息进行有效利用,在车辆运行中提供不同的功能服务。
车联网通过新一代信息通信技术,实现车与云平台、车与车、车与路、车与人、车内等全方位网络链接,主要实现了“三网融合”,即将车内网、车际网和车载移动互联网进行融合。车联网是利用传感技术感知车辆的状态信息,并借助无线通信网络与现代智能信息处理技术实现交通的智能化管理,以及交通信息服务的智能决策和车辆的智能化控制,车联网表现出以下几点特征,1、车与云平台间的通信是指车辆通过卫星无线通信或移动蜂窝等无线通信技术实现与车联网服务平台的信息传输,接受平台下达的控制指令,实时共享车辆数据;2、车与车间的通信是指车辆与车辆之间实现信息交流与信息共享,包括车辆位置、行驶速度等车辆状态信息,可用于判断道路车流状况;3、车与路间的通信是指借助地面道路固定通信设施实现车辆与道路间的信息交流,用于监测道路路面状况,引导车辆选择最佳行驶路径;4、车与人间的通信是指用户可以通过Wi-Fi、蓝牙、蜂窝等无线通信手段与车辆进行信息沟通,使用户能通过对应的移动终端设备监测并控制车辆;5、车内设备间的通信是指车辆内部各设备间的信息数据传输,用于对设备状态的实时检测与运行控制,建立数字化的车内控制系统。
为了车联网智能控制的实现,在实际使用情景状态下,需要将待联网的车辆与小程序(APP)进行绑定,即绑定后通过小程序(APP)和后端平台实现车辆状态信息的采集、分析与处理等,而如何实现快速和稳定的绑定是当前所亟待解决的。
基于上述问题,本发明提供应用于车辆和TBOX终端的绑定方法。
发明内容
发明目的:本发明的目的是针对现有技术的不足,提供应用于车辆和TBOX 终端的绑定方法,其作业流程设计合理,通过小程序能实现车辆和TBOX终端的快速和稳定的绑定,并与后端平台相配合使用的完成车辆数据信息的精准采集、分析及处理,保证车辆智能控制的安全性、可靠性,提高车联网内车辆智能控制的效率。
技术方案:本发明提供的应用于车辆和TBOX终端的绑定方法,包括以下步骤,步骤1、登录可移动手持设备预装小程序(APP),通过注册的用户名、密码登录。步骤2、利用手持设备预装小程序(APP)扫描车辆编号二维码。步骤3、利用手持设备预装小程序(APP)扫描TBOX终端二维码。步骤4、手持设备预装小程序(APP)扫描后完成车辆与TBOX终端的自动绑定。步骤5、手持设备预装小程序(APP)将扫描后完成的自动绑定数据信息发送到后端平台。步骤6、后端平台接手数据绑定,并保存绑定数据信息到后端平台的数据库;其中,可移动手持设备预装小程序与后端平台进行绑定数据信息的交互。
本技术方案的,所述步骤1中的可移动手持设备为手机、IPad,其中,小程序(APP)通过手机号码获取验证码登录小程序后,可进行扫描车辆编号二维码,扫描后可查询车辆信息,可查询车辆信息包括车辆的生产厂家,品牌,车辆类型,发动机号、车架号、车牌号、功率;所述步骤3中小程序(APP)扫描TBOX终端二维码后,可查询TBOX终端终端型号、终端编号、终端sim卡号。
本技术方案的,所述手持设备预装小程序(APP)能够查询终端信息、车辆信息、定位信息、运行信息、作业信息、报表信息、运营分析信息。
本技术方案的,所述后端平台的数据库库采用的是mongoDB数据库,能够保存T级以上的数据。
与现有技术相比,本发明的应用于车辆和TBOX终端的绑定方法的有益效果在于:其作业流程设计合理,通过小程序能实现车辆和TBOX终端的快速和稳定的绑定,并与后端平台相配合使用的完成车辆数据信息的精准采集、分析及处理,保证车辆智能控制的安全性、可靠性,提高车联网内车辆智能控制的效率。
附图说明
图1是本发明的应用于车辆和TBOX终端的绑定方法的数据处理流程结构示意图;
图2和图3是本发明的应用于车辆和TBOX终端的绑定方法的绑定演示示意 图。
具体实施方式
下面结合附图和具体实施例,进一步阐明本发明。
实施例
如图1所示的应用于车辆和TBOX终端的绑定方法,包括以下步骤,步骤1、登录可移动手持设备预装小程序(APP),通过注册的用户名、密码登录。步骤2、利用手持设备预装小程序(APP)扫描车辆编号二维码。步骤3、利用手持设备预装小程序(APP)扫描TBOX终端二维码。步骤4、手持设备预装小程序(APP)扫描后完成车辆与TBOX终端的自动绑定。步骤5、手持设备预装小程序(APP)将扫描后完成的自动绑定数据信息发送到后端平台。步骤6、后端平台接手数据绑定,并保存绑定数据信息到后端平台的数据库;其中,可移动手持设备预装小程序与后端平台进行绑定数据信息的交互。
进一步优选的,所述步骤1中的可移动手持设备为手机、IPad,其中,小程序(APP)通过手机号码获取验证码登录小程序后,可进行扫描车辆编号二维码,扫描后可查询车辆信息,可查询车辆信息包括车辆的生产厂家,品牌,车辆类型,发动机号、车架号、车牌号、功率;所述步骤3中小程序(APP)扫描TBOX终端二维码后,可查询TBOX终端的终端型号、终端编号、终端sim卡号;及所述手持设备预装小程序(APP)能够查询终端信息、车辆信息、定位信息、运行信息、作业信息、报表信息、运营分析信息;及所述后端平台的数据库库采用的是mongoDB数据库,能够保存T级以上的数据。
图2和图3是本发明的应用于车辆和TBOX终端的绑定方法的绑定演示示意图。
本发明的应用于车辆和TBOX终端的绑定方法,一方面其作业流程设计合理,通过小程序能实现车辆和TBOX终端的快速和稳定的绑定,并与后端平台相配合使用的完成车辆数据信息的精准采集、分析及处理,保证车辆智能控制的安全性、可靠性,提高车联网内车辆智能控制的效率,另一方车辆和TBOX的终端绑定,通过扫描二维码自动绑定,节省人力提高效率。
以上所述仅是本发明的优选实施方式,应当指出,对于本技术领域的普通技术人员来说,在不脱离本发明原理的前提下,还可以作出若干改进,这些改进也 应视为本发明的保护范围。

Claims (4)

  1. 应用于车辆和TBOX终端的绑定方法,其特征在于:包括以下步骤,
    步骤1、登录可移动手持设备预装小程序,通过注册的用户名、密码登录;
    步骤2、利用手持设备预装小程序扫描车辆编号二维码;
    步骤3、利用手持设备预装小程序扫描TBOX终端二维码;
    步骤4、手持设备预装小程序扫描后完成车辆与TBOX终端的自动绑定;
    步骤5、手持设备预装小程序(将扫描后完成的自动绑定数据信息发送到后端平台;
    步骤6、后端平台接手数据绑定,并保存绑定数据信息到后端平台的数据库;
    其中,可移动手持设备预装小程序与后端平台进行绑定数据信息的交互。
  2. 根据权利要求1所述的应用于车辆和TBOX终端的绑定方法,其特征在于:所述步骤1中的可移动手持设备为手机、IPad,其中,小程序通过手机号码获取验证码登录小程序后,可进行扫描车辆编号二维码,扫描后可查询车辆信息,可查询车辆信息包括车辆的生产厂家,品牌,车辆类型,发动机号、车架号、车牌号、功率;所述步骤3中小程序扫描TBOX终端二维码后,可查询TBOX终端终端型号、终端编号、终端sim卡号。
  3. 根据权利要求1所述的应用于车辆和TBOX终端的绑定方法,其特征在于:所述手持设备预装小程序能够查询终端信息、车辆信息、定位信息、运行信息、作业信息、报表信息、运营分析信息。
  4. 根据权利要求1所述的应用于车辆和TBOX终端的绑定方法,其特征在于:所述后端平台的数据库库采用的是mongoDB数据库,能够保存T级以上的数据。
PCT/CN2020/108697 2020-06-11 2020-08-12 应用于车辆和tbox终端的绑定方法 WO2021248679A1 (zh)

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