Barrier gate intelligent control method, computer readable storage medium, server and first electronic equipment

By cooperating with the first electronic device and the gate control board for two-way communication and the vehicle image capture device, closed-loop management of online and offline data in the gate management system is realized, solving the problem of data asymmetry between online and offline data and improving data integrity and management efficiency.

CN120932324APending Publication Date: 2025-11-11JIANGSU KELIDE INFORMATION TECH CO LTD
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Patent Information

Application Number
CN202511066636.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-31
Publication Date
2025-11-11

AI Technical Summary

Technical Problem

In the existing gate management system, the online vehicle entry and exit data is inconsistent with the offline vehicle entry and exit data, which makes it impossible for the server to accurately and effectively reflect the vehicle entry and exit situation, resulting in management loopholes and disputes.

Method used

The first electronic device communicates bidirectionally with the barrier gate control board, receives control information from the device remote controller, parses it into command signals, and uploads it to the server in real time. Combined with vehicle information collected by the vehicle image capture device, it generates vehicle entry and exit records, realizing closed-loop data management.

Benefits of technology

It improves the data matching accuracy and integrity of the barrier gate for vehicle entry and exit, facilitates information management, avoids data loss and management loopholes, and solves the problem of isolated offline data.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a barrier gate intelligent control method, the method is applied to first electronic equipment, the first electronic equipment is in bidirectional communication with a barrier gate control panel, and the first electronic equipment is in near field communication with an equipment remote controller, and the method comprises the following steps: the first electronic equipment receives first control information sent by the equipment remote controller; according to the method, the first electronic equipment analyzes and obtains a first instruction signal corresponding to first control information from stored remote control information, and the stored remote control information comprises the corresponding relation between N wireless signals of an equipment remote controller and N keys of the equipment remote controller; the N wireless signals and the M instructions on the barrier gate control panel are corresponding relations of signals, and both N and M are integers greater than 0; the first electronic equipment sends a first instruction signal to the barrier gate control panel; and the first electronic equipment receives a first feedback signal which is generated and sent after the barrier gate control panel executes the first instruction signal. According to the method, the basic data of the equipment remote controller for manually controlling the vehicle to go in and out of the barrier gate offline can be uploaded to the server to be recorded and summarized, the data are more complete, and the problems of data missing and the like caused by offline control of opening and closing of the barrier gate are also avoided.
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Description

Technical Field

[0001] This application belongs to the field of intelligent Internet of Things technology, and in particular relates to an intelligent control method for a barrier gate, a computer-readable storage medium, a server, and a first electronic device. Background Technology

[0002] A barrier gate is a specialized access control device used to restrict the movement of motor vehicles on roads within designated areas. It is widely used in highway toll stations, parking lots, residential communities, office buildings, and other similar locations to manage vehicle entry and exit. Currently, existing barrier gates on the market are networked to form a barrier gate management system. This system includes a server and individual barrier gates distributed throughout the various locations, communicating with the server via wired or wireless networks.

[0003] A serious problem with the current barrier gate management system is the discrepancy between online and offline vehicle entry / exit data. Specifically, there are discrepancies between the barrier gate opening / closing data for each area and the vehicle entry / exit data recorded on the server within the barrier gate management system. This discrepancy could be due to several factors, including: some barrier gate opening and closing actions are generated offline and cannot be recorded by the online system; or the data on vehicles entering and leaving the area may not correspond, leading to inconsistencies.

[0004] However, in existing technologies, because the device remote control and the barrier gate control board communicate directly in one direction, with the user sending execution command signals directly to the barrier gate control board via the device remote control, the server does not participate in the offline vehicle entry and exit management process. This results in the server's data in the barrier gate management system not accurately reflecting vehicle entry and exit, creating management loopholes in the barrier gate management system within the area, and causing various inconveniences and disputes for the current barrier gate management system and the area. To solve these problems in the existing technology, this invention was developed. Summary of the Invention

[0005] This application provides a smart gate control method, a computer-readable storage medium, a server, and a first electronic device. This solution can promptly upload offline vehicle entry and exit data to the server when a vehicle entry and exit event occurs offline. This ensures that the online vehicle entry and exit data on the server is completely identical to the offline vehicle entry and exit data, thereby improving the matching degree and data integrity between the gate control data for vehicle entry and exit and the vehicle entry and exit data recorded in the server. It also facilitates information management of vehicle entry and exit areas, enabling the development of functions related to vehicle entry and exit and the actual gate management work.

[0006] In a first aspect, embodiments of this application provide an intelligent control method for a barrier gate. The method is applied to a first electronic device, which communicates bidirectionally with a barrier gate control board and also communicates with a device remote controller at close range. The method includes:

[0007] The first electronic device receives the first control information sent by the device remote controller;

[0008] The first electronic device parses and obtains a first command signal corresponding to the first control information from the stored remote control information. The stored remote control information includes: the correspondence between N wireless signals of the device remote controller and its N buttons, and the correspondence between N wireless signals and M command signals on the barrier gate control board, where N and M are both integers greater than 0.

[0009] The first electronic device sends a first command signal to the barrier gate control board;

[0010] The first electronic device generates and sends a first feedback signal after receiving the first instruction signal from the barrier gate control board.

[0011] In some possible embodiments, the method further includes being performed after the first electronic device receives a first feedback signal sent by the barrier gate control board;

[0012] The first electronic device parses and obtains the first feedback information corresponding to the first feedback signal from the stored barrier gate information. The stored barrier gate information includes the correspondence between M command signals in the barrier gate control board and M functions of the barrier gate control board, where M is an integer greater than 0.

[0013] In some possible embodiments, the first electronic device corresponds to a server, and the method further includes:

[0014] The first electronic device sends first information to the server, wherein the first information includes first control information, which is used to request that the first control information of the device remote controller be backed up to the server through the first electronic device.

[0015] The first electronic device sends second information to the server, wherein the second information includes first feedback information, which requests that the first feedback information parsed by the first electronic device be backed up to the server through the first electronic device.

[0016] In some possible embodiments, the first electronic device communicates unidirectionally with the vehicle image capture device. When the vehicle image capture device corresponds to a server, the method involves the first electronic device parsing and obtaining a first command signal corresponding to the first control information from the stored remote control information.

[0017] The first electronic device sends a first instruction signal or first control information corresponding to the first instruction signal to the vehicle image capture device;

[0018] The first electronic device generates and sends a first feedback signal after receiving the first instruction signal from the barrier gate control board.

[0019] In some possible embodiments, the method further includes:

[0020] The first electronic device sends first information to the vehicle image capture device, wherein the first information includes first control information, which is used to request that the first control information of the device remote controller be backed up to the server;

[0021] The first electronic device sends second information to the vehicle image capture device, wherein the second information includes first feedback information, which requests that the first feedback information parsed by the first electronic device be backed up to the server.

[0022] In some possible embodiments, the vehicle image capture device acquires images of vehicles entering the gate control area;

[0023] The vehicle image capture device sends images of vehicles entering the barrier gate control area to the server.

[0024] or,

[0025] The vehicle image capture device collects images of vehicles entering the gate control area and identifies vehicle license plate information;

[0026] The vehicle image capture device sends the license plate information of vehicles entering the gate control area to the server.

[0027] In some possible embodiments, the first electronic device and the second electronic device communicate bidirectionally, the second electronic device is equipped with a client, and the client corresponds to a server, wherein the second electronic device is in the same local area network as X first electronic devices and Y vehicle image capture devices, and X and Y are both integers greater than 0; the method further includes:

[0028] The first electronic device sends first information to the second electronic device, wherein the first information includes first control information, which is used to request that the first control information of the device remote controller be backed up to the server;

[0029] The first electronic device sends second information to the second electronic device, wherein the second information includes first feedback information, which is used to request that the first feedback information parsed by the first electronic device be backed up to the server.

[0030] In some possible embodiments, the vehicle image capture device acquires images of vehicles entering the barrier gate control area; the vehicle image capture device sends the images of vehicles entering the barrier gate control area to the second electronic device;

[0031] or,

[0032] The vehicle image capture device acquires images of vehicles entering the barrier gate control area and identifies vehicle license plate information; the vehicle image capture device sends the vehicle license plate information of vehicles entering the barrier gate control area to the second electronic device.

[0033] In some possible embodiments, the second electronic device performs data splicing based on the first information and vehicle information to generate a vehicle entry and exit record corresponding to the first control information;

[0034] The second electronic device sends the generated vehicle entry and exit records to the server.

[0035] In some possible embodiments, the method further includes a vehicle image capture device located on the same local area network as the first electronic device. The method further includes, before the first electronic device sends the first control information to the server, the vehicle image capture device acquiring images of vehicles entering the barrier gate control area; and the vehicle image capture device sending the images of vehicles entering the barrier gate control area to the first electronic device.

[0036] or,

[0037] The vehicle image capture device acquires images of vehicles entering the barrier gate control area and identifies vehicle license plate information; the vehicle image capture device sends the vehicle license plate information of vehicles entering the barrier gate control area to the first electronic device.

[0038] The first electronic device performs data splicing based on the first information and vehicle information to generate a vehicle entry and exit record corresponding to the first control information, and sends the generated vehicle entry and exit record to the server.

[0039] Secondly, embodiments of this application provide a smart control method for a barrier gate. The method is applied to a server, which corresponds to a client. The client is mounted on a first electronic device, which communicates bidirectionally with the barrier gate control board. The method includes:

[0040] The server receives first information and vehicle information sent by the first electronic device. The first information includes first control information, which is used to request that the first control information be backed up to the server through the first electronic device.

[0041] The server performs data splicing based on the first information and vehicle information to generate vehicle entry and exit records corresponding to the first control information.

[0042] In some possible embodiments, the vehicle image capture device communicates unidirectionally with the barrier gate control board, sending command signals from the vehicle image capture device to the barrier gate control board; the method further includes:

[0043] The first electronic device receives the second control information sent by the server;

[0044] The first electronic device parses and obtains a second instruction signal corresponding to the second control information from the stored barrier gate information. The stored barrier gate information includes the correspondence between M instruction signals in the barrier gate control board and M functions of the barrier gate control board, where M is an integer greater than 0.

[0045] The first electronic device sends a second command signal to the vehicle image capture device.

[0046] In some possible embodiments, within a preset time period, when the first electronic device receives second control information sent by the server and the first electronic device receives first control information sent by the device remote controller, the first electronic device selects to send either the second control information or the first control information.

[0047] When the first electronic device is selected to send the second control information, the first electronic device does not send the first information to the server;

[0048] When the first electronic device is selected to send the first control information, the first electronic device sends the first information to the server.

[0049] In some possible embodiments, within a preset time interval, in response to a first control message sent by the device remote controller and a second control message sent by the server, the first electronic device selects and determines the first control message or the second control message to be sent to the barrier gate, and sends a corresponding instruction signal to the signal control board of the barrier gate.

[0050] In some possible embodiments, a second electronic device is further included. This second electronic device has a client configured with a first account. The second electronic device is located on the same local area network as X first electronic devices and Y vehicle image capture devices, where X and Y are both integers greater than 0. The method further includes a step of binding and activating the device remote controller with the first electronic device, specifically including:

[0051] The first electronic device communicates with the device remote controller at close range to obtain the device identifier of the device remote controller sent by the device remote controller;

[0052] The first electronic device sends a ninth message to the second electronic device, the ninth message including the device identifier of the device remote controller and the device identifier of the first electronic device;

[0053] In response to the ninth message sent by the first electronic device, the second electronic device sends a third message to the server. The third message includes the device identifier of the first electronic device, the device identifier of the corresponding device remote controller, and the first account.

[0054] The second electronic device receives a first activation code sent by the server, and the first activation code is used to bind the first electronic device to the device remote control;

[0055] The corresponding vehicle image capture device or the second electronic device associates and binds the corresponding vehicle image capture device, the first electronic device, and the device remote controller based on the first activation code, and sends a fourth message to the server. The fourth message includes the first activation code, the first account, and the device identifier of the device remote controller, and is used to request the device remote controller to be registered with the server.

[0056] The first electronic device receives a fifth message sent by the server, the fifth message containing a message of successful registration.

[0057] In some possible embodiments, the method further includes performing the following steps after the second electronic device receives the fifth message sent by the server:

[0058] The second electronic device receives a second message sent by the server, the second message being used to instruct the second electronic device to unbind from the device remote control;

[0059] In response to the second message, the second electronic device clears the device information stored in the device remote control and the registration information registered to the server.

[0060] In some possible embodiments, the method further includes a vehicle image capture device located on the same local area network as the second electronic device, the vehicle image capture device being configured to capture vehicle images and communicating unidirectionally with the gate's command signal control board; the method further includes:

[0061] In response to receiving the sixth message from the vehicle image capture device, the second electronic device sends an eighth message to the server; the sixth message contains the device identifier of the vehicle image capture device and is used to request the vehicle image capture device to be registered with the second electronic device; the eighth message is used to request the vehicle image capture device to be registered with the server.

[0062] The second electronic device receives a second activation code sent by the server, the second activation code corresponding to the vehicle image capture device;

[0063] The second electronic device sends a seventh message to the vehicle image capture device, the seventh message containing a message of successful registration.

[0064] Thirdly, embodiments of this application provide a computer-readable storage medium storing a computer program, characterized in that the computer program, when executed by a processor, implements the aforementioned intelligent control method for the barrier gate.

[0065] Fourthly, this application provides a server, characterized in that the server is used to implement the intelligent control method for the barrier gate.

[0066] Fifthly, embodiments of this application provide a first electronic device, comprising:

[0067] Memory, used to store instructions;

[0068] A processor is used to execute the instructions to enable the device to implement the intelligent control method for the barrier gate described above.

[0069] Sixthly, embodiments of this application provide a closed-loop data system for offline remote-controlled gates within a parking area, the system comprising:

[0070] A barrier gate, which has a barrier gate control board with at least a number of command signal bits, is configured to raise and lower the barrier gate according to the user's trigger.

[0071] The device remote control is configured to send first control information;

[0072] A first electronic device electrically connected to the barrier gate is equipped with a client and configured to receive first control information from the device remote controller, parse and obtain a first instruction signal corresponding to the first control information from the stored remote control information, wherein the stored remote control information includes: the correspondence between N wireless signals and N buttons of the device remote controller, and the correspondence between the N wireless signals and M instruction signals on the barrier gate control board, where N and M are both integers greater than 0, and to send the first instruction signal to the barrier gate control board and send first information to the server, wherein the first information includes first control information, used to request that the first control information of the device remote controller be backed up to the server through the first electronic device;

[0073] The server is configured to receive first information and vehicle information sent by the first electronic device. The first information includes first control information, which is used to request that the first control information be backed up to the server through the first electronic device. The server is also configured to perform data splicing based on the first information and vehicle information to generate a vehicle entry and exit record corresponding to the first control information.

[0074] In some possible embodiments, the device remote control is provided with function buttons, including an on button, an off button, a stop button, and a query button. In some possible embodiments, the on button includes a normally open button and a single-on button. In some possible embodiments, the query button includes a vehicle information query button, a barrier gate status query button, a battery level query button, and a pairing query button; preferably, the off button includes a normally off button and a single-off button.

[0075] In some possible embodiments, the device remote controller communicates bidirectionally with the first electronic device at close range, and the communication protocol used may be one or more wireless communication protocols selected from 2.4G, NFC, Bluetooth, WiFi, ZigBee, LoRa, and NB-IoT.

[0076] In some possible embodiments, the system further includes a vehicle image capture device located on the same local area network as the first electronic device, the vehicle image capture device being configured to capture vehicle images and identify vehicle license plate information.

[0077] In some possible embodiments, the barrier gate is divided into an entrance barrier gate and an exit barrier gate; the entrance barrier gate and the exit barrier gate are respectively connected to the same first electronic device.

[0078] In some possible embodiments, the barrier gate control board is respectively connected to a vehicle image capture device, a trigger ground loop coil, an anti-smashing ground loop coil, a gate that controls the gate arm to rise and fall, a ground loop vehicle detector, a display device, and a gate that controls the gate arm to rise and fall.

[0079] This application provides a smart control method for a barrier gate, a computer-readable storage medium, a server, and a first electronic device. The invention uses the first electronic device to parse and convert the device remote control, transforming the user's control information into execution instructions and uploading the user's control information. This allows the basic data of the device remote control for manually controlling vehicles to enter and exit the barrier gate offline to be uploaded to the server for recording and aggregation, resulting in more complete data. It also avoids problems such as data loss caused by offline control of the barrier gate opening and closing, facilitating the settlement of vehicle parking fees and the resolution of disputes related to abnormal events, and providing a unified solution for different barrier gate manufacturers. Attached Figure Description

[0080] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments of this application will be briefly introduced below. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0081] Figure 1 This is a schematic diagram illustrating the application scenario of a parking area according to an embodiment of the present invention;

[0082] Figure 2 This is a schematic diagram of the parking area vehicle entrance and exit gate management system according to an embodiment of the present invention (showing two gates);

[0083] Figure 3 A schematic diagram of the system architecture principle of the barrier gate management system provided in the embodiments of this application;

[0084] Figure 4 A simplified schematic diagram of a device remote controller provided in a specific embodiment of this application;

[0085] Figure 5 A flowchart illustrating the steps of a smart gate control method provided in a specific embodiment of this application;

[0086] Figure 6 A flowchart illustrating another step of the intelligent control method for a barrier gate provided in a specific embodiment of this application;

[0087] Figure 7 A flowchart illustrating further specific steps of the intelligent control method for a barrier gate provided in a specific embodiment of this application;

[0088] Figure 8 A schematic diagram illustrating another system architecture principle of the barrier gate management system provided in a specific embodiment of this application;

[0089] Figure 9 A detailed flowchart of a smart gate control method provided in another specific embodiment of this application;

[0090] Figure 10A detailed flowchart of a smart gate control method provided in yet another specific embodiment of this application;

[0091] Figure 11 A schematic diagram illustrating another system architecture principle of the barrier gate management system provided in a specific embodiment of this application;

[0092] Figure 12 A flowchart illustrating a method for a device remote controller to register with a server via a second electronic device, as provided in a specific embodiment of this application.

[0093] Figure 13 A schematic block diagram of a first electronic device provided in a specific embodiment of this application;

[0094] Figure 14 A schematic diagram of the framework of a computer-readable storage medium provided for a specific embodiment of this application. Detailed Implementation

[0095] The features and exemplary embodiments of various aspects of this application will be described in detail below. To make the objectives, technical solutions, and advantages of this application clearer, the application will be further described in detail below with reference to the accompanying drawings and specific embodiments. It should be understood that the specific embodiments described herein are only intended to explain this application and not to limit it. For those skilled in the art, this application can be implemented without some of these specific details. The following description of the embodiments is merely to provide a better understanding of this application by illustrating examples.

[0096] It should be understood that in the description of this application and the claims, the terms "first," "second," etc., are used only to distinguish the described objects and do not have any order or technical meaning. Therefore, the objects specified with "first," "second," etc., may explicitly or implicitly include one or more of those objects. Furthermore, the words "one" or "a" do not indicate a quantity limitation, but rather indicate the presence of at least one, while "more than" indicates at least two.

[0097] For example, Figure 1 This is a schematic diagram illustrating an application scenario of a parking area provided in an embodiment of this application. However, it is not limited to this type of application scenario. Figure 1 and Figure 2 As shown, Figure 2The arrows in the diagram indicate the direction of vehicle travel. In this application scenario, at vehicle entrances and exits, a gateway 8, a vehicle image capture device 7 (such as a high-definition camera), a trigger ground loop coil 4, an anti-collision ground loop coil 6, a gate arm, a ground loop vehicle detector, a display device (information display screen, etc.), a gate machine (not shown) that controls the raising and lowering of the gate arm, and a gate control board 3 that controls the operation of various actuators can be deployed. These are all deployed in fixed locations within the same parking area 1 (e.g., the vehicle entrance / exit 2 at a community guard post, with separate identification zones 5 for vehicle entrance and exit), and all belong to the same manager of the parking area. These parking areas can be residential communities, office buildings, or administrative buildings. A terminal computer (not shown) with a smart gate management application installed on the same local area network can also be set up to manage the gateway 8 and vehicle image capture device 7 within the local area network.

[0098] The gateway 8 and the vehicle image capture device 7 are configured in different ways. For example... Figure 3 The diagram illustrates a principle architecture of this barrier gate management system. Within a local area network (LAN), vehicle image capture device 7 and gateway 8 are located on the same LAN, with gateway 8 corresponding to server 10. Gateway 8 connects to server 10 via a wired or wireless network. Gateway 8 and vehicle image capture device 7 can be on the same LAN, and all vehicle image capture devices 7 are registered on gateway 8 (for example, gateway 8 stores device information for vehicle image capture devices 7). A smart barrier gate management application is installed on gateway 8, which can be used to manage gateway 8 and vehicle image capture devices 7 within the LAN.

[0099] Based on the above configuration, the specific embodiment of the present invention can constitute a closed-loop data system for an offline remote-controlled barrier gate within a parking area. The system includes: a barrier gate, a barrier gate control board having at least a plurality of command signal bits, configured to raise and lower the barrier gate upon user triggering; a device remote controller 9, configured to send first control information; and a first electronic device electrically connected to the barrier gate, equipped with a client, configured to receive the first control information from the device remote controller, and parse and obtain a first command signal corresponding to the first control information from stored remote control information. The stored remote control information includes: the correspondence between N wireless signals and N buttons of the device remote controller, and N... The wireless signal corresponds to M command signals on the barrier gate control panel, where N and M are both integers greater than 0. The system sends a first command signal to the barrier gate control panel and first information to the server. This first information includes first control information, used to request the backup of the device remote control's first control information to the server via the first electronic device. The server is configured to receive the first information sent by the first electronic device, which includes the first control information, used to request the backup of the first control information to the server via the first electronic device. Based on the first information and vehicle information, the server generates a vehicle entry / exit record corresponding to the first control information. The first electronic device can be a gateway. Depending on the area scenario settings and whether the barrier gate controls vehicle entry into or exit from the area, it can be divided into entrance barrier gates and exit barrier gates.

[0100] In specific embodiments, such as Figure 4 As shown, the device remote controller 9 is equipped with function buttons, including an open button, an close button, a stop button, and a query button. In some possible embodiments, the open button includes a normally open button 94 and a single open button 91. In some possible embodiments, the query button includes a vehicle information query button 92, a barrier gate status query button 93, a battery level query button, and a pairing query button; the close button includes a normally closed button 95 and a single closed button 96. In some possible embodiments, the device remote controller communicates bidirectionally with the first electronic device at near range, and the communication protocol used can be one or more wireless communication protocols selected from 2.4G, NFC, Bluetooth, WiFi, ZigBee, LoRa, and NB-IoT. The device remote controller of the present invention refers to a device that wirelessly sends control signals to a corresponding first electronic device, so that the first electronic device responds to the control signals to perform corresponding functions. For example, the device remote controller can send different wireless signals to the first electronic device, and after receiving the wireless signals, the first electronic device can drive the barrier gate control board to perform different functions (e.g., opening the gate, closing the gate, querying vehicle information, querying battery information, etc.) according to the different wireless signals.

[0101] The remote control information stored on the first electronic device includes the correspondence between N wireless signals and N buttons of the device's remote control, and the correspondence between the N wireless signals and M command signals on the barrier gate control board, where N and M are both integers greater than 0. When the device's remote control is an infrared remote control, this remote control information can correspond to the button information (e.g., button identifiers) and the infrared codes of each function of the device's remote control. By transmitting the infrared codes to the first electronic device, the user's command request is sent to the first electronic device. When the device's remote control is a 2.4G wireless remote control, this remote control information can correspond to the button information (e.g., button identifiers) and the specific wireless waveforms corresponding to each function of the device's remote control. The correspondence between the wireless signals and the command signals on the barrier gate control board is established by the first electronic device based on the received wireless signals. The user's command request is then parsed and a correspondence is established between the user's command request and the various command signals set on the barrier gate control board. In this way, the wireless signals can directly trigger and call the corresponding command signals on the barrier gate control board. Common command signals include: gate opening signal, gate closing signal, gate fully open signal, gate fully closed signal, stop signal, etc.

[0102] The device remote controller 9 communicates with the gateway 8 over a short distance. The gateway can connect to multiple vehicle image capture devices 7 to achieve vehicle recognition and access management in different recognition zones 5. In this invention, the device remote controller does not communicate directly with the barrier gate to control its opening and closing. Instead, it communicates with the gateway over a short distance, whereby the gateway converts the barrier gate's control information into command signals and sends them to the barrier gate control board for execution. The barrier gate control board communicates bidirectionally with the gateway, facilitating monitoring of its pre-operation, during-operation, and post-operation states. These different states are received by the gateway through feedback information after command execution. By sending this feedback information to the server 10, the entire process of manually opening and closing the barrier gate using the device remote controller can be completely recorded. In this way, the vehicle access data in the server and the vehicle access data in the area are completely matched, forming a closed-loop vehicle access data system and avoiding control loopholes.

[0103] like Figure 5 As shown, when using the first electronic device for intelligent control of the barrier gate, the first electronic device communicates bidirectionally with the barrier gate control board, and the first electronic device communicates at close range with the device remote controller. The method includes:

[0104] S1 The first electronic device receives the first control information sent by the device remote controller;

[0105] S2 The first electronic device parses and obtains the first instruction signal corresponding to the first control information from the stored remote control information. The stored remote control information includes: the correspondence between N wireless signals of the device remote controller and its N buttons, and the correspondence between N wireless signals and M instruction signals on the barrier gate control board. N and M are both integers greater than 0.

[0106] S3 The first electronic device sends a first command signal to the barrier gate control board;

[0107] S4 The first electronic device generates and sends a first feedback signal after receiving the first instruction signal from the barrier gate control board.

[0108] The vehicle image capture device obtains first control information from the device remote controller from the first electronic device and sends first information to the server, wherein the first information includes first control information for requesting that the first control information of the device remote controller be backed up to the server; and the vehicle image capture device obtains first feedback information from the first electronic device and sends second information to the server, wherein the second information includes first feedback information for requesting that the first feedback information parsed by the first electronic device be backed up to the server.

[0109] More specifically, such as Figure 6 As shown, in some possible embodiments, the method further includes:

[0110] (S10) In response to the user's key operation, the first electronic device receives the first control information sent by the device remote control;

[0111] (S20) The first electronic device parses and obtains the first instruction signal corresponding to the first control information from the stored remote control information, wherein the stored remote control information includes: the correspondence between N wireless signals of the device remote controller and its N buttons, and the correspondence between N wireless signals and M instruction signals on the barrier gate control board, where N and M are both integers greater than 0.

[0112] (S30) The first electronic device sends a first instruction signal to the barrier gate control board, and (S40) sends first information to the server, wherein the first information includes first control information, which is used to request that the first control information of the device remote controller be backed up to the server through the first electronic device.

[0113] (S50) After the first electronic device sends a first instruction signal to the barrier gate control board, the barrier gate control board executes the first instruction signal and generates a first feedback signal to send to the first electronic device.

[0114] (S60) The first electronic device receives the first feedback signal sent by the barrier gate control board;

[0115] (S70) The first electronic device parses and obtains the first feedback information corresponding to the first feedback signal from the stored barrier information, wherein the stored barrier information includes: the correspondence between M instruction signals in the barrier control board and M functions of the barrier control board, where M are all integers greater than 0;

[0116] (S80) The first electronic device sends second information to the server, wherein the second information includes first feedback information, which is used to request that the first feedback information of the device remote control be backed up to the server through the first electronic device.

[0117] This method, through the cooperation of the device remote control and the gateway, adds the command information of the device remote control to the parking management system via a first electronic device. This eliminates the isolation of the device remote control command information, solving the problem of isolated command information from the remote control in existing gatehouse management systems, which leads to parking management chaos and frequent disputes. This invention, through the cooperation of the device remote control and the gateway, backs up the control information corresponding to the commands to the server, enabling timely uploading of offline remote control gate data within the parking area to the server, thus achieving a closed loop of vehicle entry and exit data.

[0118] In a more specific scenario, the vehicle image capture device 7 is a commonly used device in parking management systems. For example... Figure 1 and 2 As shown, in some possible embodiments, the system further includes a vehicle image capture device, which is located on the same local area network as the first electronic device. The vehicle image capture device is configured to capture vehicle images, and further functional configurations may include the ability to identify vehicle license plate information.

[0119] In the above steps, the vehicle image capture device 7 does not participate in the command control of the barrier gate control panel. The vehicle image capture device can be configured to capture vehicle images and communicate with the first electronic device or the server. The vehicle image capture device and the first electronic device are on the same local area network. The method further includes, before the first electronic device sends the first control information to the server, the vehicle image capture device captures vehicle images entering the barrier gate control area; the vehicle image capture device then sends the vehicle images entering the barrier gate control area to the first electronic device.

[0120] or,

[0121] The vehicle image capture device acquires images of vehicles entering the barrier gate control area and identifies vehicle license plate information; the vehicle image capture device sends the vehicle license plate information of vehicles entering the barrier gate control area to the first electronic device.

[0122] The first electronic device performs data splicing based on the first information and vehicle information to generate a vehicle entry and exit record corresponding to the first control information, and sends the generated vehicle entry and exit record to the server.

[0123] The vehicle information may be license plate information, entry and exit time, etc., identified from vehicle images captured by vehicle image capture equipment.

[0124] When the image acquisition device communicates directly with the server, the vehicle image capture device acquires images of vehicles entering the barrier gate control area; the vehicle image capture device then sends these images to the server; alternatively, the vehicle image capture device acquires images of vehicles entering the barrier gate control area and identifies the vehicle license plate information; the vehicle image capture device then sends the license plate information of the vehicles entering the barrier gate control area to the server. Specifically, for example... Figure 7 As shown, the method includes the following steps:

[0125] (S101) In response to the user's key operation, the first electronic device receives the first control information sent by the device remote control;

[0126] (S102) The first electronic device parses and obtains the first instruction signal corresponding to the first control information from the stored remote control information. The stored remote control information includes: the correspondence between N wireless signals of the device remote controller and its N buttons, and the correspondence between N wireless signals and M instruction signals on the barrier gate control board. N and M are both integers greater than 0.

[0127] (S103) The first electronic device sends a first command signal to the barrier gate control board;

[0128] (S104) The barrier gate control panel triggers a vehicle image acquisition request;

[0129] (S105) The vehicle image capture device acquires vehicle images and performs license plate recognition;

[0130] (S106) The vehicle image capture device sends the license plate recognition result to the server;

[0131] (S107) The barrier gate control panel executes the first command signal;

[0132] (S108) The first electronic device sends first information to the server, wherein the first information includes first control information, which is used to request that the first control information of the device remote controller be backed up to the server through the first electronic device.

[0133] (S109) The first information and the license plate recognition result are spliced ​​together according to preset conditions to generate vehicle entry and exit records.

[0134] In some possible embodiments, the barrier gate control board is connected to a gateway, a vehicle image capture device, a trigger inductive loop, an anti-collision inductive loop, a gate that controls the raising and lowering of the gate arm, an inductive vehicle detector, a display device, and the gate that controls the raising and lowering of the gate arm. The barrier gate control board has M command signals corresponding to M command signals, such as an open signal bit, a close signal bit, a closed-to-full signal bit, an open-to-full signal bit, etc. The first electronic device is electrically connected to the command signal bits of the barrier gate control board, forwarding the first command signal (or second command signal) parsed from the first control information (or second control information) to the corresponding command signal bit.

[0135] In some possible embodiments, the vehicle image capture device is electrically connected to the command signal bits of the barrier gate control board, forwarding the second command signal parsed from the second control information to the corresponding command signal bits. The vehicle image capture device can forward commands issued by the server to the corresponding command signal bits, such as the gate opening signal bit and the gate closing signal bit, to realize the gate opening or closing under the server's command. The vehicle image capture device and the barrier gate control board can communicate unidirectionally or bidirectionally.

[0136] like Figure 8 As shown, in some specific embodiments, the vehicle image capture device 7 is connected to the network to form a network camera. Since the vehicle image capture device 7 is connected to the network, it is equipped with a network interface. Specifically, the vehicle image capture device can be a camera, and it communicates with the server via a wired or wireless network. In scenarios where the vehicle image capture device is electrically connected to the command signal bits of the barrier gate's control board, the first electronic device can also be electrically connected to the command signal bits of the barrier gate's control board to collect and receive feedback signals. In a typical case, the first electronic device can also be electrically connected to the closed and open signal bits of the barrier gate control board. Based on the received trigger signals of the closed and open signal bits, the remote terminal gateway determines whether the barrier gate is fully closed or fully open. The vehicle image capture device is electrically connected to the command signal bits of the barrier gate's control board, thereby triggering the open and closed signal bits. The first electronic device and the vehicle image capture device transmit command signals via an RS485 interface.

[0137] Specifically, such as Figure 9 As shown, the method includes the following steps:

[0138] (S900) When a vehicle enters the area, a license plate recognition signal is triggered.

[0139] (S901) In response to the user's key operation, the first electronic device receives the first control information sent by the device remote control;

[0140] (S902) The first electronic device parses and obtains the first instruction signal corresponding to the first control information from the stored remote control information, wherein the stored remote control information includes: the correspondence between N wireless signals of the device remote controller and its N buttons, and the correspondence between N wireless signals and M instruction signals on the barrier gate control board, where N and M are both integers greater than 0.

[0141] (S903) The first electronic device sends a first command signal to the barrier gate control board;

[0142] (S904) The barrier gate control board sends a vehicle image acquisition request to the vehicle image capture device;

[0143] (S905) The vehicle image capture device acquires vehicle images;

[0144] (S906) The vehicle image capture device sends a vehicle image to the server;

[0145] (S907) The barrier gate control panel executes the first command signal;

[0146] (S908) The first electronic device sends first information to the vehicle image capture device;

[0147] (S909) The vehicle image capture device sends first information to the server, wherein the first information includes first control information, which is used to request that the first control information of the device remote controller be backed up to the server through the first electronic device.

[0148] (S910) The first information and the license plate recognition result are spliced ​​together according to preset conditions to generate vehicle entry and exit records.

[0149] At this time, the vehicle image capture device and the server can communicate directly, enabling vehicle entry and exit data recording without the need for a remote control. A specific embodiment of this invention provides a smart gate control method. This method is applied to a vehicle image capture device, which communicates unidirectionally with the gate control board. The vehicle image capture device sends command signals to the gate control board. The method includes:

[0150] The vehicle image capture device receives second control information sent by the server;

[0151] The vehicle image capture device parses and obtains the second instruction signal corresponding to the second control information from the stored barrier gate information. The stored barrier gate information includes the correspondence between M instruction signals in the barrier gate control board and M functions of the barrier gate control board, where M is an integer greater than 0.

[0152] The vehicle image capture device sends a second command signal to the barrier gate control panel.

[0153] The server can control various functions of the barrier gate control panel, facilitating normal vehicle access. When the vehicle image capture device lacks sufficient interfaces, the first electronic device can receive feedback signals. For example, the first electronic device receives and sends a second feedback signal after the barrier gate control panel executes the second command signal.

[0154] By coordinating the vehicle image capture device, the first electronic device, and the device remote control, the device remote control is bound to the vehicle information, which is then uploaded to the server, enabling a complete record of vehicle entry and exit information on the server.

[0155] In some possible embodiments, the vehicle image capture device communicates unidirectionally with the barrier gate control board, sending command signals from the vehicle image capture device to the barrier gate control board.

[0156] In some possible embodiments, the method further includes:

[0157] The first electronic device receives the second control information sent by the server;

[0158] The first electronic device parses and obtains the second instruction signal corresponding to the second control information from the stored barrier gate information. The stored barrier gate information includes the correspondence between M instruction signals in the barrier gate control board and M functions of the barrier gate control board, where M are all integers greater than 0.

[0159] The first electronic device sends a second command signal to the vehicle image capture device; or the first electronic device sends a first command signal to the vehicle image capture device.

[0160] In some possible embodiments, within a preset time period, when the first electronic device receives second control information sent by the server and the first electronic device receives first control information sent by the device remote controller, the first electronic device selects to send either the second control information or the first control information.

[0161] When the first electronic device is selected to send the second control information, the first electronic device does not send the first information to the server;

[0162] When the first electronic device is selected to send the first control information, the first electronic device sends the first information to the server.

[0163] like Figure 10 The specific steps of the method adopted in the specific embodiments of the present invention are as follows:

[0164] (S301) When a vehicle enters the area, the barrier gate control panel triggers a license plate recognition signal;

[0165] (S302) The barrier gate control panel notifies the vehicle image capture device to perform image acquisition and license plate recognition processing;

[0166] (S303) The vehicle image capture device performs image acquisition operations and identifies license plate information;

[0167] (S304) The vehicle image capture device sends a request to the server for vehicle license plate information and vehicle entry / exit request.

[0168] (S305) The server returns the second control information to the first electronic device;

[0169] (S306) In response to the user's key operation, the first electronic device receives the first control information sent by the device remote control;

[0170] (S307) The first electronic device filters control information and determines the execution order;

[0171] (S308) The first electronic device sends first control information to the vehicle image capture device;

[0172] (S309) The vehicle image capture device parses and obtains a first command signal corresponding to the first control information from the stored remote control information;

[0173] (S310) The vehicle image capture device sends a first command signal to the barrier gate control panel;

[0174] (S311) The first electronic device sends first information to the server.

[0175] In some possible embodiments, within a preset time interval, in response to first control information sent by the device remote controller and second control information sent by the server, the first electronic device selects and determines either the first control information or the second control information to be sent to the barrier gate, and sends a corresponding command signal to the signal control board of the barrier gate. The short-range communication between the device remote controller and the first electronic device of the present invention can also be achieved using short-range communication methods such as nearfield communication (NFC) or neighborhood aware networking (NAN) with controlled transmission power.

[0176] like Figure 11 The diagram illustrates a cluster architecture for this gate management system. When the second electronic device 11 communicates with the server, the second electronic device, the first electronic device, and the vehicle image capture devices are all within the same local area network (LAN). The second electronic device has a client with a first account. The second electronic device, X first electronic devices, and Y vehicle image capture devices are all within the same LAN, where X and Y are both positive integers. At this time, the second electronic device transmits data with the vehicle image capture devices via network communication; the second electronic device also transmits data with the first electronic device via network communication. However, the vehicle image capture devices do not communicate directly with the first electronic devices. The second electronic device can be a network gateway.

[0177] Because a single second electronic device can manage multiple first electronic devices, multiple device remote controls, and multiple vehicle image capture devices, it has good applications in some large parking areas. In some possible embodiments, the barrier gate is divided into multiple entrance barrier gates and multiple exit barrier gates; the multiple entrance barrier gates and multiple exit barrier gates are respectively connected to the same second electronic device and managed uniformly through the second electronic device.

[0178] The second electronic device is equipped with a client, and the client is equipped with a first account. The second electronic device is located on the same local area network as X first electronic devices and Y vehicle image capture devices, where X and Y are both integers greater than 0. The method also includes a step of binding and activating the device remote control with the first electronic device, such as... Figure 12 As shown, it specifically includes:

[0179] (S401) The first electronic device communicates with the device remote controller at close range and obtains the device identifier of the device remote controller sent by the device remote controller;

[0180] (S402) The first electronic device sends a ninth message to the second electronic device, the ninth message including the device identifier of the device remote controller and the device identifier of the first electronic device;

[0181] (S403) In response to the ninth message sent by the first electronic device, the second electronic device sends a third message to the server, the third message including the device identifier of the first electronic device, the device identifier of the corresponding device remote controller, and the first account;

[0182] (S404) The second electronic device receives a first activation code sent by the server, the first activation code being used to bind the device remote control to the first electronic device;

[0183] (S405) The corresponding vehicle image capture device or the second electronic device associates and binds the corresponding vehicle image capture device, the first electronic device, and the device remote control based on the first activation code;

[0184] (S406) The corresponding vehicle image capture device or the second electronic device sends a fourth message to the server. The fourth message includes the first activation code, the first account, and the device identifier of the device remote controller, and is used to request the device remote controller to be registered with the server.

[0185] (S407) The corresponding vehicle image capture device or the second electronic device receives the fifth message sent by the server, the fifth message containing a message of successful registration;

[0186] (S408) The corresponding vehicle image capture device or the second electronic device sends a notification message to the first electronic device.

[0187] The first activation code primarily identifies the second electronic device as authorizing the remote control to use its own identity, facilitating offline control of the gate using privileged credentials. For example, the first activation code can be composed of multiple random numbers. After generating the first activation code, the server can send it to the client logged into the second electronic device, enabling the remote control to be activated and bound via the second electronic device. Upon receiving the first activation code, the first account, and the remote control's device identifier from the second electronic device, the server can check the allocation status of the first activation code in its activation code generation records. If the server determines that the first activation code was recently allocated, it can approve the remote control's registration. At this point, the server can record information (such as identity identifiers) of the first electronic device, the vehicle image capture device, and the remote control, thereby associating the operation of these devices with the account.

[0188] Of course, the first electronic device, acting as a gateway device, can be pre-bound to the vehicle image capture device. When the device remote controller interacts with the first electronic device, the second electronic device enables the device remote controller to bind to existing associations, which are the corresponding associations between the first electronic device and the vehicle image capture device. In some possible embodiments, the first electronic device and the device remote controller can be pre-bound and registered with a server, facilitating the server's recording of vehicle entry and exit information for the first electronic device, the device remote controller, and the associated vehicle image capture device. As a gateway device, the first electronic device can pre-configure the vehicle image capture device when it enters the local area network. After initializing and configuring both the gateway and the vehicle image capture device, the gateway can discover the vehicle image capture device and other devices on the same local area network. The device remote controller, however, is not on the local area network and requires specific configuration and registration.

[0189] In some possible embodiments, the method further includes performing the following steps after the first electronic device receives the fifth message sent by the server:

[0190] The first electronic device receives a second message sent by the server, the second message being used to instruct the first electronic device to unbind from the device remote control;

[0191] In response to the second message, the first electronic device clears the device information of the device remote controller and the registration information that has been registered to the server.

[0192] In some possible embodiments, the method further includes a vehicle image capture device located on the same local area network as the second electronic device, the vehicle image capture device being configured to capture vehicle images and communicating unidirectionally with the gate's command signal control board; the method further includes:

[0193] In response to receiving the sixth message from the vehicle image capture device, the second electronic device sends an eighth message to the server; the sixth message contains the device identifier of the vehicle image capture device and is used to request the vehicle image capture device to be registered with the second electronic device; the eighth message is used to request the vehicle image capture device to be registered with the server.

[0194] The second electronic device receives a second activation code sent by the server, the second activation code corresponding to the vehicle image capture device;

[0195] The second electronic device sends a seventh message to the vehicle image capture device, the seventh message containing a successful registration message. This second activation code is primarily used to identify the vehicle image capture device. Through the second activation code, the server can record information about the vehicle image capture device (such as its identification) and associate the smart device with the first account. This facilitates the entry of new vehicle image capture devices into the gate management system.

[0196] When the intelligent control method for the barrier gate in this invention is applied to a server, the server corresponds to a client, the client is set on a first electronic device, and the first electronic device communicates bidirectionally with the barrier gate control board. The method includes:

[0197] The server receives first information sent by the first electronic device, the first information including first control information, for requesting that the first control information be backed up to the server through the first electronic device;

[0198] The server performs data splicing based on the first information and vehicle information to generate vehicle entry and exit records corresponding to the first control information.

[0199] Depending on the application scenario, data splicing in this invention can be performed in a first electronic device, a second electronic device, or a server. Data splicing is performed using timestamp alignment. The specific data splicing method steps are as follows:

[0200] (1) Extract the first command signal and the occurrence time of the first command signal corresponding to the first control information from the first information;

[0201] (2) Extract license plate recognition information and vehicle image acquisition time from vehicle information;

[0202] (3) Based on the timestamps of both, the missing parts of the vehicle entry and exit records are spliced ​​together according to preset conditions to fill in the missing parts of the vehicle entry and exit records.

[0203] The preset conditions can be the same timestamp, or the time estimated based on the timestamp, and the allowed time interval can be set to calibrate and revise based on the data splicing result.

[0204] In a specific embodiment of the present invention, when the server participates in the control process of vehicle entry and exit within a designated area, the technical solution of the present invention can be integrated with a barrier gate management system, such as with license plate recognition, vehicle entry and exit fee calculation, etc. The technical solution of the present invention can be applied to, for example... Figure 1In the prior art barrier gate management system shown, multiple vehicle image capture devices are located within the same local area network (LAN), and a first electronic device acts as a gateway to communicate with a server. The gateway's client can assign a unique network address to each vehicle image capture device within the LAN to monitor and control vehicle access to the barrier gate. The vehicle image capture devices are also connected to a display screen, which displays the license plate number based on the vehicle's identification.

[0205] like Figure 13 As shown, the first electronic device of the present invention includes: a memory for storing instructions; and a processor for executing the instructions to enable the device to implement the above-described intelligent control method for the barrier gate. More specifically, the first electronic device further includes a communication module.

[0206] In this solution, the processor is the computing and control core of the first electronic device 200. The processor 210 may include one or more processing units. For example, the processor 210 may include one or more of the following: application processor (AP), modem, graphics processing unit (GPU), image signal processor (ISP), controller, video codec, digital signal processor (DSP), baseband processor, and / or neural network processing unit (NPU). Different processing units may be independent devices or integrated into one or more processors.

[0207] The memory 220 may store a program, which can be executed by the processor 210, causing the processor 210 to perform the methods provided in this application. The memory 220 may also store data. The processor 210 may read the data stored in the memory 220. The memory 220 and the processor 210 may be configured separately. Optionally, the memory 220 may also be integrated into the processor 210.

[0208] The communication module 230 may include at least one of a mobile communication module and a wireless communication module. When the communication module 230 includes a mobile communication module, it can provide wireless communication solutions, including 2G / 3G / 4G / 5G, for use on the electronic device 200. Examples include Global System for Mobile Communications (GSM), General Packet Radio Service (GPRS), Code Division Multiple Access (CDMA), Wideband Code Division Multiple Access (WCDMA), Time Division Code Division Multiple Access (TD-SCDMA), Long Term Evolution (LTE), and New Radio (NR).

[0209] The communication module 230 may include at least one filter, switch, power amplifier, low-noise amplifier (LNA), etc. The communication module 230 can receive electromagnetic waves via at least one antenna, and perform filtering, amplification, and other processing on the received electromagnetic waves before transmitting them to a modem for demodulation. The communication module 230 can also amplify the signal modulated by the modem and radiate it as electromagnetic waves via the antenna. In some examples, at least some functional modules of the communication module 230 may be housed in the processor 210. In some examples, at least some functional modules of the communication module 230 and at least some modules of the processor 210 may be housed in the same device. When the communication module 230 includes a wireless communication module, it can provide solutions for wireless communication applications on the electronic device 200, including wireless local area networks (WLANs) (such as wireless fidelity (Wi-Fi) networks), Bluetooth (BT), global navigation satellite system (GNSS), frequency modulation (FM), near field communication (NFC), and infrared (IR) technologies. The communication module 230 can be one or more devices integrating at least one communication processing module. The communication module 230 receives electromagnetic waves via an antenna, performs frequency modulation and filtering of the electromagnetic wave signals, and sends the processed signal to the processor 210. The communication module 230 can also receive signals to be transmitted from the processor 210, perform frequency modulation and amplification, and then convert them into electromagnetic waves for radiation via the antenna.

[0210] Reference Figure 14 , Figure 14This is a schematic diagram of the framework of a computer-readable storage medium according to a specific embodiment of this application. The computer-readable storage medium stores a computer program, which, when executed by a processor, implements the aforementioned intelligent gate control method. The computer-readable storage medium 22 in this embodiment stores calculator program instructions, which, when executed, implement the method provided in this application. These calculator program instructions can be formed into a program file and stored in the aforementioned computer-readable storage medium as a software product, enabling a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods in various embodiments of this application. The aforementioned computer-readable storage medium 22 includes various media capable of storing program code, such as a USB flash drive, mobile hard drive, read-only memory (ROM), random access memory (RAM), magnetic disk, or optical disk, or terminal devices such as computers, servers, mobile phones, and tablets. More specifically, the computer-readable storage medium in this embodiment stores a computer program product, which includes a computer program. When executed by a processor, the computer program implements the steps of the aforementioned intelligent gate control method. When used as a server, the server is used to implement the aforementioned intelligent gate control method.

[0211] Furthermore, the functional units in the various embodiments of the present invention can be integrated into a processing module, or each unit can exist physically separately, or two or more units can be integrated into a module. The integrated module can be implemented in hardware or as a software functional module. If the integrated module is implemented as a software functional module and sold or used as an independent product, it can also be stored in a computer-readable storage medium.

[0212] In the above embodiments, implementation can be achieved entirely or partially through software, hardware, firmware, or any combination thereof. When implemented using software, it can be implemented entirely or partially in the form of a computer program product. The computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on a computer, all or part of the processes or functions described in the embodiments of this application are generated. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer instructions can be stored in a computer-readable storage medium or transmitted through the computer-readable storage medium. The computer instructions can be transmitted from one website, computer, server, or data center to another website, computer, server, or data center via wired (e.g., coaxial cable, fiber optic, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) means. The computer-readable storage medium can be any available medium that a computer can access or a data storage device such as a server or data center that integrates one or more available media. The available medium can be a magnetic medium (e.g., floppy disk, hard disk, magnetic tape), an optical medium (e.g., DVD), or a semiconductor medium (e.g., solid-state disk (SSD)).

[0213] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

Claims

1. A method for intelligent control of a barrier gate, the method being applied to a first electronic device, the first electronic device communicating bidirectionally with a barrier gate control board, and the first electronic device communicating short-range with a device remote controller, the method comprising: The first electronic device receives the first control information sent by the device remote controller; The first electronic device parses and obtains a first instruction signal corresponding to the first control information from the stored remote control information. The stored remote control information includes: the correspondence between N wireless signals of the device remote controller and its N buttons, and the correspondence between the N wireless signals and M instruction signals on the barrier gate control board, where N and M are both integers greater than 0. The first electronic device sends a first command signal to the barrier gate control board; The first electronic device generates and sends a first feedback signal after receiving the first instruction signal from the barrier gate control board.

2. The intelligent control method for a barrier gate according to claim 1, further comprising performing the following after the first electronic device receives the first feedback signal sent by the barrier gate control board: The first electronic device parses and obtains the first feedback information corresponding to the first feedback signal from the stored barrier gate information, wherein, The stored barrier gate information includes: the correspondence between M instruction signals in the barrier gate control board and M functions of the barrier gate control board, where M is an integer greater than 0.

3. The intelligent control method for a barrier gate according to claim 2, wherein the first electronic device corresponds to a server, and the method further includes: The first electronic device sends first information to the server, wherein the first information includes first control information, which is used to request that the first control information of the device remote controller be backed up to the server through the first electronic device. The first electronic device sends second information to the server, wherein the second information includes first feedback information, which requests that the first feedback information parsed by the first electronic device be backed up to the server through the first electronic device.

4. The intelligent control method for a barrier gate according to claim 2, wherein the first electronic device communicates unidirectionally with the vehicle image capture device, and the vehicle image capture device corresponds to a server, the method involves the first electronic device parsing and obtaining a first command signal corresponding to the first control information from the stored remote control information and then performing the following: The first electronic device sends a first instruction signal or first control information corresponding to the first instruction signal to the vehicle image capture device; The first electronic device generates and sends a first feedback signal after receiving the first instruction signal from the barrier gate control board.

5. The intelligent control method for a barrier gate according to claim 4, further comprising: The first electronic device sends first information to the vehicle image capture device, wherein the first information includes first control information, which is used to request that the first control information of the device remote controller be backed up to the server; The first electronic device sends second information to the vehicle image capture device, wherein the second information includes first feedback information, which requests that the first feedback information parsed by the first electronic device be backed up to the server.

6. The intelligent control method for a barrier gate according to claim 2, wherein the first electronic device and the second electronic device communicate bidirectionally, the second electronic device is provided with a client, the client corresponds to a server, wherein the second electronic device is in the same local area network as X first electronic devices and Y vehicle image capture devices, and X and Y are both integers greater than 0; the method further includes: The first electronic device sends first information to the second electronic device, wherein the first information includes first control information, which is used to request that the first control information of the device remote controller be backed up to the server; The first electronic device sends second information to the second electronic device, wherein the second information includes first feedback information, which is used to request that the first feedback information parsed by the first electronic device be backed up to the server.

7. A method for intelligent control of a barrier gate, the method being applied to a server, the server corresponding to a client, the client being mounted on a first electronic device, the first electronic device communicating bidirectionally with a barrier gate control board, the method comprising: The server receives first information and vehicle information sent by the first electronic device. The first information includes first control information, which is used to request that the first control information be backed up to the server through the first electronic device. The server performs data splicing based on the first information and vehicle information to generate vehicle entry and exit records corresponding to the first control information.

8. A computer-readable storage medium storing a computer program, characterized in that, When the computer program is executed by the processor, it implements the intelligent control method for the barrier gate as described in any one of claims 1 to 6.

9. A server, characterized in that, The server is used to implement the intelligent control method for the barrier gate as described in claim 7.

10. A first electronic device, comprising: Memory, used to store instructions; A processor is configured to execute the instructions to enable the device to implement the intelligent control method for the barrier gate as described in any one of claims 1 to 6.