Control Method, Device and Storage Medium of Mobile Internet of Things Sensing System
By building an operation instruction set and message analysis module, obtaining the interface list of the mobile IoT sensing system and configuring a monitoring and forwarding gateway, the problem of energy consumption regulation of the mobile IoT sensing system is solved and reasonable control of the system's energy consumption is achieved.
Patent Information
- Application Number
- CN202111495600.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-12-08
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2041-12-08
AI Technical Summary
The prior art cannot effectively adjust the energy consumption of mobile IoT sensing systems and cannot meet the high energy consumption control requirements in mobile IoT scenarios.
Build an operation instruction set, obtain the java configuration class, interface and implementation class through the message parsing module, obtain the interface list of mobile IoT sensing components, and configure the listening and forwarding gateway in the server host cluster to realize the parameter configuration and operation status adjustment of the mobile IoT sensing system.
It realizes the timely adjustment of the configuration information of components in the mobile IoT sensing system according to client needs, keeps the system energy consumption in a reasonable state, and supports high-efficiency energy consumption control in mobile scenarios.
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Figure CN114385311B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of the Internet of Things, and in particular to a control method, device, and storage medium for a mobile Internet of Things sensing system. Background Art
[0002] In the related art, the k8s+PaaS platform management mode has gradually become the current mainstream deployment form of Internet of Things sensing components. Component R & D manufacturers often extract common basic service interfaces based on the same series of application components and uniformly package them into common basic services for all component function services in the same cluster to call, so as to achieve the purpose of improving the reuse rate of underlying interfaces. For some specific scenarios, such as a multi-sensing component system in a mobile Internet of Things scenario, as the location of the multi-sensing component system changes, the type of sensing data collection will be dynamically adjusted as needed, and the operating state of the corresponding sensing device must be dynamically matched with it, so as to achieve the purpose of reducing the overall energy consumption of the system and delaying the battery life. At present, simply packaging the common basic services can no longer meet the high requirements of the mobile Internet of Things sensing system in energy consumption control. Summary of the Invention
[0003] The present invention aims to at least solve one of the technical problems existing in the prior art. For this purpose, the present invention provides a control method, device, and storage medium for a mobile Internet of Things sensing system, which can effectively adjust the energy consumption of the mobile Internet of Things sensing system.
[0004] On the one hand, an embodiment of the present invention provides a control method for a mobile Internet of Things sensing system, including the following steps:
[0005] Construct an operation instruction set;
[0006] Obtain a Java configuration class, an interface and an implementation class, and a receiving and processing class through a pre-set message parsing module;
[0007] Obtain an interface list of the mobile Internet of Things sensing components through a pre-set instruction issuing system, and the mobile Internet of Things sensing components are provided in the mobile Internet of Things sensing system;
[0008] Package the operation instruction set, the information obtained by the message parsing module, and the information obtained by the instruction issuing system and deploy them to a server host cluster, and configure a listening and forwarding gateway at the public network exit of the server;
[0009] Forward a configuration request sent by a client to a corresponding response port of the server host cluster through the listening and forwarding gateway; configure parameters and adjust the operating state of the mobile Internet of Things sensing system through the response port.
[0010] In some embodiments, the instruction writing rules in the operation instruction set include:
[0011] Instruction set writing rules, including request header, access token, and request body;
[0012] Instruction request method rules, including the Hypertext Transfer Protocol Secure (HTTPS) request method;
[0013] Instruction encryption method rules, including asymmetric encryption methods.
[0014] In some embodiments, the message parsing module includes a register, a token parser, and a request body list parser;
[0015] The register is used to register the operator's identity ID, key, and permission list, and to register the requestable addresses;
[0016] The token parser is used to parse the token;
[0017] The request body list parser is used to perform format verification and data parsing on the instruction text in the request body.
[0018] In some embodiments, forwarding the configuration request sent by the client to the corresponding response port of the server host cluster; performing parameter configuration and operating state adjustment on the mobile Internet of Things perception system through the response port, including:
[0019] Obtaining the configuration list and token in the configuration request sent by the client;
[0020] Parsing the token through a pre-set message parsing module and verifying the configuration list;
[0021] After determining that the configuration list verification is successful, determining the corresponding response port of the server host cluster;
[0022] Obtaining, through a pre-set instruction distribution module, the interface list corresponding to the response port in the mobile Internet of Things perception component;
[0023] Performing parameter configuration and operating state adjustment on the mobile Internet of Things perception system according to the configuration list through the interface list.
[0024] In some embodiments, before the step of obtaining the configuration list and token in the configuration request sent by the client, the method further includes the following steps:
[0025] Obtaining the identity ID and key sent by the client;
[0026] Generate a token based on the identity ID and the key, and return the token to the client.
[0027] In some embodiments, the method further includes the following steps:
[0028] Obtain the device operation status feedback information of the mobile Internet of Things sensing system.
[0029] In some embodiments, the ciphertext generated by the asymmetric encryption method includes the original instruction, elliptic geometric parameters, and a random number. The elliptic geometric parameters serve as the public key, and the random number serves as the private key.
[0030] On the other hand, an embodiment of the present invention provides a control device for a mobile Internet of Things sensing system, including:
[0031] A construction unit for constructing an operation instruction set;
[0032] A first acquisition unit for acquiring a Java configuration class, an interface and an implementation class, and a reception processing class through a pre-set message parsing module;
[0033] A second acquisition unit for acquiring an interface list of the mobile Internet of Things sensing components through a pre-set instruction issuing system, and the mobile Internet of Things sensing components are provided in the mobile Internet of Things sensing system;
[0034] A packaging and deployment unit for packaging and deploying the operation instruction set, the information acquired by the message parsing module, and the information acquired by the instruction issuing system to a server host cluster, and configuring a listening and forwarding gateway at the public network exit of the server;
[0035] A configuration unit for forwarding a configuration request sent by a client to a corresponding response port of the server host cluster through the listening and forwarding gateway; and performing parameter configuration and operation status adjustment on the mobile Internet of Things sensing system through the response port.
[0036] On the other hand, an embodiment of the present invention provides a control device for a mobile Internet of Things sensing system, including:
[0037] At least one memory for storing a program;
[0038] At least one processor for loading the program to execute the control method of the mobile Internet of Things sensing system.
[0039] On the other hand, an embodiment of the present invention provides a storage medium in which a computer-executable program is stored, and when the computer-executable program is executed by a processor, it is used to implement the control method of the mobile Internet of Things sensing system.
[0040] A control method for a mobile Internet of Things perception system provided by an embodiment of the present invention has the following beneficial effects:
[0041] In this embodiment, an operation instruction set is first constructed. At the same time, a Java configuration class, an interface and an implementation class, and a receiving and processing class are obtained through a pre-set message parsing module. Through a pre-set instruction issuing system, an interface list of the mobile Internet of Things perception components is obtained, and the operation instruction set, the information obtained by the message parsing module, and the information obtained by the instruction issuing system are packaged and deployed to a server host cluster. A listening and forwarding gateway is configured at the public network exit of the server, so that during the application process, the configuration information of the mobile Internet of Things perception components in the mobile Internet of Things perception system can be adjusted in a timely manner according to the needs of the client to adjust the running state of the mobile Internet of Things perception components, so that the energy consumption of the mobile Internet of Things perception system remains in a relatively reasonable state.
[0042] Additional aspects and advantages of the present invention will be given in part in the following description, and in part will become apparent from the following description, or will be understood through the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0043] The following further describes the present invention in conjunction with the drawings and embodiments, where:
[0044] Figure 1 is a configuration module block diagram of a mobile Internet of Things perception system for an existing embodiment;
[0045] Figure 2 is a configuration module block diagram of a mobile Internet of Things perception system for an embodiment of the present invention;
[0046] Figure 3 is a flowchart of a control method for a mobile Internet of Things perception system for an embodiment of the present invention;
[0047] Figure 4 is an interaction schematic diagram of an application system for an embodiment of the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0048] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the drawings, where the same or similar reference numerals represent the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary and are only used to explain the present invention and should not be construed as a limitation of the present invention.
[0049] In the description of the present invention, it should be understood that with respect to the orientation description, such as the orientation or positional relationship indicated by up, down, front, back, left, right, etc., it is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present invention.
[0050] In the description of the present invention, the meaning of several is more than one, the meaning of multiple is more than two, greater than, less than, exceeding, etc. are understood as not including the present number, above, below, within, etc. are understood as including the present number. If there is a description of first and second, it is only for the purpose of distinguishing technical features, and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features or implicitly indicating the sequence relationship of the indicated technical features.
[0051] In the description of the present invention, unless otherwise clearly defined, terms such as setting, installation, connection, etc. should be understood in a broad sense, and those skilled in the art can reasonably determine the specific meaning of the above terms in the present invention in combination with the specific content of the technical solution.
[0052] In the description of the present invention, the description with reference to terms such as "one embodiment", "some embodiments", "schematic embodiments", "examples", "specific examples", or "some examples" means that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.
[0053] As Figure 1 shown, the current device status configuration module is set in the IoT mobile office platform SaaS application. For example, if there are n IoT mobile office platform SaaS applications, then a device status configuration module is respectively set in each IoT mobile office platform SaaS application, and other business function modules are also set. Then, by interacting with the K8S container cluster, the configuration of the mobile IoT perception system is realized. Among them, the K8S container cluster includes the common basic services of the IoT perception components and the functional services of the IoT perception components. However, the common basic services of the IoT perception components include several common services, and the functional services of the IoT perception components include smoke sensor components, high-altitude parabolic monitoring components, temperature and humidity components, face recognition components, etc. When the position of the mobile IoT perception system changes, the K8S container cluster cannot dynamically adjust the control of the mobile IoT perception system due to the lack of a device status configuration module.
[0054] Based on this, as Figure 2As shown in the figure, in this embodiment, a component service dedicated to adaptively adjusting the power consumption mode of components for devices is deployed in the K8S cluster, so as to achieve the purpose of dynamically matching the operating states of the devices bound to the corresponding components according to the location of the system, thereby meeting the higher requirements for system energy consumption control in the mobile Internet of Things scenario.
[0055] Specifically, referring to Figure 3 , the embodiment of the present invention provides a control method for a mobile Internet of Things perception system, including the following steps:
[0056] S31. Construct an operation instruction set.
[0057] In this embodiment, the operation instruction set may include an https + json operation instruction set. Among them, https (HyperText Transfer Protocol over Secure Socket Layer) is the Hypertext Transfer Security Protocol, which is a transmission protocol for secure communication through a computer network. Json (Java Script Object Notation) is a lightweight data exchange format, which uses a text format completely independent of the language. In this embodiment, the https + json operation instructions can be customized according to actual needs and designed following the principles of security and generality. The instruction writing rules in the operation instruction set include the instruction set writing rules, the instruction request method rules, and the instruction encryption method rules. Specifically, the instruction set writing rules include the request header header, the access token accessToken, and the request body body; the instruction request method rules include the Hypertext Transfer Security Protocol https request method; the instruction encryption method rules include the asymmetric encryption method. For example, it includes common https request methods such as POST and GET, and the ECDSA asymmetric encryption method. The ciphertext of the ECDSA asymmetric encryption method includes the original instruction, the elliptic geometry parameter, and the random number. The elliptic geometry parameter is used as the public key, and the random number is used as the private key. For example, it is encoded by the original instruction * elliptic curve geometry parameter G * 8-bit random number dA. Among them, the parameter G is used as the public key and is published on the public platform, and dA is used as the private key. Among them, the instruction of the same ciphertext becomes invalid immediately after being sent by the instruction sending system to prevent repeated execution. The operation instructions do not design remote start / stop or upgrade operations for this system, and the same type of operations are only authorized for local execution by the administrator to ensure the security of the device to the greatest extent.
[0058] S32. Through a pre-set message parsing module, obtain the java configuration class, interface and implementation class, and receive and process class.
[0059] In this embodiment, the message parsing module includes a register, a token parser, and a request body list parser; the register is used to register the operator identity ID, the secret key, and the permission list, as well as register the requestable addresses; the token parser is used to parse the token; the request body list parser is used to perform format verification and data parsing on the instruction body in the request body. It can be understood that the register registers the operator identity ID, the secret key, and the permission list through a specified Java configuration class in the project and registers the requestable addresses. Nginx is encapsulated in the container to implement the routing function. The token in the token parser is temporarily generated using the application ID and the application secret key ID as encryption factors and will be correspondingly parsed into the operator's identity and permissions. The actual valid time can be adjusted according to business requirements. The body in the request body list parser fills in the instruction body to be issued, which mainly consists of a set of position coordinates, a device unique identification ID, a preset operating state, and a status maintenance period. An operation prompt message in JSON format is returned according to the completeness of the body information.
[0060] S33. Obtain the interface list of the mobile Internet of Things perception component through a pre-set instruction issuing system, where a mobile Internet of Things perception component is provided in the mobile Internet of Things system.
[0061] In this embodiment, during the application process, the instruction issuing system can respond to the instructions authenticated by the JSON message parsing system. Automatically request the authorized perception application API, so as to adjust the corresponding perception device to one of the four operating states of running, hot standby, cold standby, or maintenance, so that it can dynamically match the perception data collection requirements.
[0062] S34. Package and deploy the operation instruction set, the information obtained by the message parsing module, and the information obtained by the instruction issuing system to the server host cluster, and configure a listening and forwarding gateway nginx at the public network exit of the server.
[0063] S35. Forward the configuration request sent by the client to the corresponding response port of the server host cluster through the listening and forwarding gateway; perform parameter configuration and operating state adjustment on the mobile Internet of Things system through the response port.
[0064] In this embodiment, during the application process, the configuration list and the token in the configuration request sent by the client can be obtained first, and then the token is parsed by a pre-set message parsing module, and the configuration list is verified. After it is determined that the configuration list verification is successful, the response port corresponding to the server host cluster is determined. The medium obtains the interface list corresponding to the response port in the mobile Internet of Things perception component through a pre-set instruction distribution module, and then configures the parameters and adjusts the operating state of the mobile Internet of Things perception system according to the configuration list, so that the energy consumption of the mobile Internet of Things perception system can always be maintained in a relatively reasonable state.
[0065] In this embodiment, before the step of obtaining the configuration list and the token in the configuration request sent by the client, it is also necessary to obtain the identity ID and the key sent by the client, generate the token according to the identity ID and the key, and then return the token to the client, so that the client does not need to input the user name and password during the subsequent request process.
[0066] In this embodiment, when adjusting the operating state of the mobile Internet of Things perception system, the device operating state feedback information of the mobile Internet of Things perception system is also obtained to realize the functions of dynamic monitoring and adjustment.
[0067] As Figure 4 shown, when the embodiment of the present invention is applied among the client, the server platform and the mobile Internet of Things perception device system, the client sends the identity ID and the key to the server platform to request the token; the message parsing module in the server platform generates the token according to the identity ID and the key, and returns the token to the client; the client attaches the token to the configuration list and sends the configuration list to the server platform; the message parsing module in the server platform parses the token, and performs format verification on the instruction text in the request body of the configuration list through the receiving and processing class controller. After the verification is completed, the verified instruction is sent to the instruction distribution module in the server platform; the instruction distribution module returns the execution result to the client, and then sends the verified configuration information to the mobile Internet of Things perception device system. At the same time, after the face recognition device, the dust monitoring device, the smoke sensor and the temperature and humidity sensor in the mobile Internet of Things perception device system are configured, the device operating state feedback returned by the mobile Internet of Things perception device system is received.
[0068] In some other embodiments, when the embodiment of the present invention is applied to the actual application process, it specifically includes the following execution steps:
[0069] Step 1: According to the instruction encoding rules, establish a set of https + jason operation instruction sets, and generate a pair of encrypted public and private keys through an encoding tool.
[0070] Step 2: According to the jason message parsing system, based on the Java language, customize a Java configuration class to register the operator's identity ID, key, permission list, and register information such as the requestable addresses. Parse the token through an interface and an implementation class custom function. Write a controller class to perform format verification on the instruction text in the body. Among them, the token is a string generated by the server as a token for the client to make requests. After the first login, the server generates a token and returns it to the client. Later, as long as the client brings this token to request data, there is no need to bring the username and password again. The Controller is the most basic component in Spring Boot. Its role is to match the requests submitted by the client through the URL, assign them to different receivers, process them, and then return the results to the user. The key lies in how to obtain information from the HTTP request, extract parameters, and distribute them to different processing services. The code is divided into a header file, function definitions, and the main() function. What is inside the curly braces of main() is the request body.
[0071] Step 3: According to the instruction distribution system, encapsulate the interface list of authorized third-party IoT perception components in the request format.
[0072] Step 4: According to the content of Steps 1, 2, and 3, use programming software to implement an adaptive energy consumption control system for a mobile IoT perception system to achieve remote request, analysis and processing, and result output of configuration instructions.
[0073] Step 5: Package the adaptive energy consumption control system in Step 4 into a docker image and deploy it to the server-side host cluster to run as a container service. Configure an nginx at the public network exit of the server as a listening and forwarding service gateway to be responsible for forwarding the configuration request to the specified response port of the container.
[0074] Step 6: The client obtains the public network address of the server and splices it according to the address format in the instruction manual to obtain a complete configuration request address.
[0075] Step 7: The client first uses its own identity ID to request a token for the address obtained in Step 6, and then fills in the specific configuration instruction text in the body according to the format requirements in the instruction manual, and attaches the token to make an https request.
[0076] Repeat Steps 6 and 7 to send remote configuration instructions and observe the system execution results.
[0077] In summary, the embodiments of the present invention have the following advantages:
[0078] High convenience in remote configuration: The container service adopts a cloud deployment with the K8S architecture, eliminating the need to install a client. By referring to the instruction manual, the complex energy consumption control logic of the mobile Internet of Things perception system can be remotely configured.
[0079] High precision in system control: Taking the system location coordinates as input parameters, the control time of each device status is accurate to the second level, and the preset operating status of the device is dynamically matched to support a higher granularity control logic for the terminals in the Internet of Things system for mobile scenarios.
[0080] Strong service extensibility: Authentication, routing, parsing, and instruction issuing functions are integrated inside the container. The operation of the server side is decoupled from the application environment of the Internet of Things perception class, achieving the effect that the operator can call the underlying complex perception application API without awareness.
[0081] The embodiments of the present invention provide a control device for a mobile Internet of Things perception system, including:
[0082] A construction unit, configured to construct an operation instruction set;
[0083] A first acquisition unit, configured to obtain a Java configuration class, an interface and an implementation class, and a reception processing class through a pre-set message parsing module;
[0084] A second acquisition unit, configured to obtain a list of interfaces of the mobile Internet of Things perception components through a pre-set instruction issuing system, where the mobile Internet of Things perception components are provided in the mobile Internet of Things perception system;
[0085] A packing and deployment unit, configured to pack the operation instruction set, the information obtained by the message parsing module, and the information obtained by the instruction issuing system and deploy them to a server host cluster, and configure a listening and forwarding gateway at the public network exit of the server;
[0086] A configuration unit, configured to forward a configuration request sent by a client to a corresponding response port of the server host cluster through the listening and forwarding gateway; and perform parameter configuration and operating status adjustment on the mobile Internet of Things perception system through the response port.
[0087] The content of the method embodiments of the present invention is applicable to the device embodiments of the present invention. The functions specifically implemented by the device embodiments are the same as those of the above method embodiments, and the beneficial effects achieved are also the same as those of the above method.
[0088] The embodiments of the present invention provide a control device for a mobile Internet of Things perception system, including:
[0089] At least one memory for storing a program;
[0090] At least one processor for loading the program to execute Figure 3 The control method of the mobile Internet of Things sensing system shown.
[0091] The content of the method embodiments of the present invention is applicable to the device embodiments of the present invention. The functions specifically implemented by the device embodiments of the present invention are the same as those of the above method embodiments, and the beneficial effects achieved are also the same as those of the above method.
[0092] The embodiments of the present invention provide a storage medium, in which a computer-executable program is stored. When the computer-executable program is executed by a processor, it is used to implement Figure 3 The control method of the mobile Internet of Things sensing system shown.
[0093] The embodiments of the present application also disclose a computer program product or a computer program. The computer program product or the computer program includes computer instructions, and the computer instructions are stored in a computer-readable storage medium. The processor of the computer device can read the computer instructions from the computer-readable storage medium, and the processor executes the computer instructions, so that the computer device executes Figure 3 The control method of the mobile Internet of Things sensing system shown.
[0094] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made without departing from the spirit of the present invention within the scope of knowledge possessed by those of ordinary skill in the art. In addition, the embodiments of the present invention and the features in the embodiments can be combined with each other without conflict.
Claims
1. A control method for a mobile Internet of Things sensing system, characterized in that, It includes the following steps: Construct an operation instruction set; Obtain a Java configuration class, an interface and an implementation class, and a receiving and processing class through a pre-set message parsing module; Obtain an interface list of the mobile Internet of Things perception component through a pre-set instruction issuing system, and the mobile Internet of Things perception component is provided in the mobile Internet of Things perception system; Package the operation instruction set, the information obtained by the message parsing module, and the information obtained by the instruction issuing system and deploy them to the server host cluster, and configure a listening and forwarding gateway at the public network exit of the server; Forward the configuration request sent by the client to the corresponding response port of the server host cluster through the listening and forwarding gateway; configure parameters and adjust the running state of the mobile Internet of Things perception system through the response port; Among them, forwarding the configuration request sent by the client to the corresponding response port of the server host cluster; configuring parameters and adjusting the running state of the mobile Internet of Things perception system through the response port includes: Obtain the configuration list and token in the configuration request sent by the client; Parse the token through a pre-set message parsing module and verify the configuration list; After determining that the configuration list verification is successful, determine the corresponding response port of the server host cluster; Obtain the interface list corresponding to the response port in the mobile Internet of Things perception component through a pre-set instruction issuing module; Configure parameters and adjust the running state of the mobile Internet of Things perception system according to the configuration list through the interface list.
2. The control method of a mobile Internet of Things perception system according to claim 1, characterized in that, The instruction writing rules in the operation instruction set include: Instruction set writing rules, including request header, access token, and request body; Instruction request method rules, including the Hypertext Transfer Protocol Secure (HTTPS) request method; Instruction encryption method rules, including asymmetric encryption method.
3. The control method of a mobile Internet of Things sensing system according to claim 1, characterized in that, The message parsing module includes a registrar, a token parser, and a request body list parser; The registrar is used to register the operator's identity ID, key, and permission list, and register the requestable address; The token parser is used to parse the token; The request body list parser is used to perform format verification and data parsing on the instruction text in the request body.
4. The control method of a mobile Internet of Things sensing system according to claim 1, characterized in that, Before the step of obtaining the configuration list and token in the configuration request sent by the client, the method further includes the following steps: Obtain the identity ID and key sent by the client; Generate a token according to the identity ID and key and return the token to the client.
5. A control method for a mobile Internet of Things sensing system according to claim 1, characterized in that The method further includes the following steps: Obtain the device running state feedback information of the mobile Internet of Things perception system.
6. The control method of a mobile Internet of Things perception system according to claim 2, characterized in that, The ciphertext generated by the asymmetric encryption method includes the original instruction, elliptic geometric parameters, and a random number. The elliptic geometric parameters serve as the public key, and the random number serves as the private key.
7. A control device for a mobile Internet of Things sensing system, characterized in that, It includes: A construction unit for constructing an operation instruction set; A first acquisition unit, configured to acquire a Java configuration class, an interface and an implementation class, and a reception processing class through a pre-set message parsing module; A second acquisition unit, configured to acquire an interface list of a mobile Internet of Things perception component through a pre-set instruction issuing system, where the mobile Internet of Things perception component is provided in the mobile Internet of Things system; A packaging and deployment unit, configured to package and deploy the operation instruction set, the information acquired by the message parsing module, and the information acquired by the instruction issuing system to a server host cluster, and configure a listening and forwarding gateway at the public network exit of the server; A configuration unit, configured to forward a configuration request sent by a client to a corresponding response port of the server host cluster through the listening and forwarding gateway; and perform parameter configuration and operating state adjustment on the mobile Internet of Things system through the response port; Wherein, forwarding the configuration request sent by the client to the corresponding response port of the server host cluster; performing parameter configuration and operating state adjustment on the mobile Internet of Things system through the response port includes: Obtaining a configuration list and a token in the configuration request sent by the client; Parsing the token through a pre-set message parsing module and verifying the configuration list; After determining that the configuration list verification is successful, determining the corresponding response port of the server host cluster; Obtaining an interface list corresponding to the response port in the mobile Internet of Things perception component through a pre-set instruction issuing module; Performing parameter configuration and operating state adjustment on the mobile Internet of Things system according to the configuration list through the interface list.
8. A control device for a mobile Internet of Things sensing system, characterized in that, Including: At least one memory, configured to store a program; At least one processor, configured to load the program to execute the control method of the mobile Internet of Things perception system according to any one of claims 1-6.
9. A storage medium, characterized in that, Wherein there is a computer-executable program stored, and when the computer-executable program is executed by the processor, it is used to implement the control method of the mobile Internet of Things perception system according to any one of claims 1-6.
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