High-risk transport goods leakage information processing method and device, equipment and storage medium

By combining the emergency command system with unmanned detection equipment and environmental data, the rescue route and operation area are dynamically updated, which solves the problems of high difficulty and danger in rescue when high-risk transported goods are leaked, and realizes efficient and safe rescue operations.

CN120471547BActive Publication Date: 2026-01-06BEIJING JIANGTAI TECH CO LTD +1
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Patent Information

Application Number
CN202510542702.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-28
Publication Date
2026-01-06
Estimated Expiration
2045-04-28

AI Technical Summary

Technical Problem

When high-risk transported goods leak, rescue users cannot determine the rescue location and route in a timely and accurate manner, resulting in high difficulty and danger in the rescue.

Method used

The emergency command system utilizes unmanned detection equipment to collect information on the concentration and location of high-risk transported goods. Combined with historical operational information and environmental data, it dynamically updates rescue routes and operational areas, providing real-time interface guidance to rescue users.

Benefits of technology

It improves the efficiency and safety of the rescue process, ensures that rescue users can respond quickly and accurately and execute reasonable tasks, and reduces the risks in the rescue process.

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Patent Text Reader

Abstract

The application provides a high-risk transport product leakage information processing method, device and equipment and a storage medium. The method comprises the following steps: in response to a first operation of a master console device, a terminal device displays a first interface comprising target operation information and a target operation area corresponding to the target operation information. The target operation information is information in a plurality of reference operation information. The reference operation information is determined according to an accident type in a corresponding reference operation area. The accident type is determined according to the type of the high-risk transport product and a first concentration of the high-risk transport product in the reference operation area. The reference operation area is determined according to a preset concentration difference, environmental data, physicochemical property data of the high-risk transport product, a concentration calculation formula and position information. If it is determined that a second concentration of the high-risk transport product is greater than or equal to a first preset concentration, a second interface is determined according to the second concentration, real-time position information of a user and the target operation area. The terminal device displays the second interface. In the application, the operation efficiency of the user in rescue can be improved.
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Description

Technical Field

[0001] This application relates to the field of data processing technology, and in particular to a method, apparatus, equipment and storage medium for processing information on leaks of high-risk transported goods. Background Technology

[0002] High-risk transported goods often possess flammable, explosive, or toxic properties, posing a safety hazard to personnel at the leak site if a leak occurs. In the event of an accident during the transport of high-risk goods leading to a leak, it is necessary to promptly dispatch professional rescue personnel to the leak location to rescue those affected and ensure their safety. However, because leaks of high-risk transported goods are often sudden and unpredictable, rescue personnel often lack knowledge of the specific conditions at the rescue site, resulting in significant difficulties and high risks associated with the rescue operation. Summary of the Invention

[0003] This application provides a method, apparatus, equipment, and storage medium for processing information on leaks of high-risk transported goods. It can determine operational information based on the accident type of different operational areas, improve the efficiency of the operational information and the rationality of the determination results, and make the rescue operation process faster and safer for users.

[0004] In a first aspect, embodiments of this application provide a method for processing information on leaks of highly hazardous transported goods, applied to a server of an emergency command system. The emergency command system includes the server, a main control console device for emergency command personnel communicatively connected to the server, terminal devices for rescue users, and unmanned detection devices. The method includes:

[0005] In response to a first operation of the main control console device, the terminal device is controlled to display a first interface. The first interface includes target operation information and a target operation area corresponding to the target operation information. The target operation information includes a rescue route. The target operation information is information matched from multiple reference operation information based on the historical operation information of the rescue user. The reference operation information is determined based on the accident type within the reference operation area corresponding to the reference operation information. The accident type is determined based on the type of the high-risk transported goods and the first concentration of the high-risk transported goods collected by the unmanned detection device within the reference operation area. The reference operation area is determined based on a preset concentration difference, environmental data, physicochemical property data of the high-risk transported goods, concentration calculation formula, and location information collected through the Beidou system.

[0006] The terminal device acquires the second concentration of the high-risk transported goods and the real-time location information of the rescue user.

[0007] If the second concentration is greater than or equal to the first preset concentration, the rescue route is updated according to the second concentration, the real-time location information and the target operation area to obtain the first rescue route;

[0008] The first interface is updated based on the first rescue route to obtain the second interface;

[0009] Control the terminal device to display the second interface.

[0010] Secondly, embodiments of this application provide a device for processing information on leaks of highly hazardous transported goods, applied to a server of an emergency command system. The emergency command system includes the server, a main control console device for emergency command personnel communicatively connected to the server, terminal devices for rescue users, and unmanned detection devices. The device includes:

[0011] A first control unit is configured to respond to a first operation of the main control console device and control the terminal device to display a first interface. The first interface includes target operation information and a target operation area corresponding to the target operation information. The target operation information includes a rescue route. The target operation information is information matched from multiple reference operation information based on the historical operation information of the rescue user. The reference operation information is determined based on the accident type within the reference operation area corresponding to the reference operation information. The accident type is determined based on the type of the high-risk transported goods and the first concentration of the high-risk transported goods collected by the unmanned detection device within the reference operation area. The reference operation area is determined based on a preset concentration difference, environmental data, physicochemical property data of the high-risk transported goods, concentration calculation formula, and location information collected through the Beidou system.

[0012] The acquisition unit is used to acquire the second concentration of the high-risk transported goods obtained by the terminal device and the real-time location information of the rescue user;

[0013] The first updating unit is used to update the rescue route according to the second concentration, the real-time location information and the target operation area if the second concentration is greater than or equal to the first preset concentration, thereby obtaining the first rescue route;

[0014] The second update unit is used to update the first interface based on the first rescue route to obtain the second interface;

[0015] The second control unit is used to control the terminal device to display the second interface.

[0016] Thirdly, embodiments of this application provide a terminal device, the terminal device including at least one processor, a communication interface and a memory, the communication interface being used to send and / or receive data, the memory being used to store a computer program, and the at least one processor being used to call the computer program stored in the memory to implement any of the methods of the first aspect of this application.

[0017] Fourthly, embodiments of this application provide an electronic device including a processor and a memory, the memory being used to store computer program code, the computer program code including computer instructions, wherein, when the processor executes the computer instructions, the electronic device executes the instructions as in any of the methods of the first aspect of this application.

[0018] Fifthly, embodiments of this application provide a computer-readable storage medium storing a computer program, the computer program including program instructions that, when executed by a processor, cause the processor to perform some or all of the steps described in any method of the first aspect of this application.

[0019] Sixthly, this application provides a computer program operable to cause a computer to perform some or all of the steps described in any of the methods of the first aspect of the embodiments of this application. The computer program may be a software installation package.

[0020] As can be seen, the method for processing information on leakage of hazardous transported goods in this embodiment of the application is applied to the server of an emergency command system. The emergency command system includes a server, a main control console device for emergency command personnel connected to the server, terminal devices for rescue users, and unmanned detection devices. The method includes: responding to a first operation of the main control console device, controlling the terminal device to display a first interface. The first interface includes target operation information and a target operation area corresponding to the target operation information. The target operation information includes a rescue route and is information matched from multiple reference operation information based on the historical operation information of the rescue user. The reference operation information is determined based on the accident type within the reference operation area corresponding to the reference operation information. The accident type is determined based on the type of hazardous transported goods and the first concentration of hazardous transported goods collected by the unmanned detection device within the reference operation area, thereby improving the rationality of the determined operation information. The reference operation area is determined based on a preset concentration difference, environmental data, physicochemical property data of hazardous transported goods, concentration calculation formula, and location information collected through the BeiDou system; making the divided reference operation area more reasonable. The system acquires a second concentration of hazardous transported goods obtained from the terminal device and the user's real-time location information. If the second concentration is greater than or equal to a first preset concentration, the rescue route is updated based on the second concentration, real-time location information, and target work area to obtain a first rescue route. A first interface is updated based on the first rescue route to obtain a second interface. The terminal device is then controlled to display the second interface. In this application, the work area is determined based on a preset concentration difference, environmental data, physicochemical property data of the hazardous transported goods, concentration calculation formulas, and location information collected through the BeiDou system. This makes the situation within the divided work area more uniform, resulting in a safer work process. Work information is determined based on the accident types within the determined work area, enabling rapid formulation of work information, improving efficiency, and making the determined work information more reasonable. Attached Figure Description

[0021] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0022] Figure 1 This application provides a schematic diagram of the structure of an emergency command system according to an embodiment of the present application.

[0023] Figure 2A This is a schematic diagram of the structure of a main control console device provided in an embodiment of this application;

[0024] Figure 2B This is a schematic diagram of the structure of a terminal device provided in an embodiment of this application;

[0025] Figure 3 A flowchart illustrating a method for processing information on leakage of high-risk transported goods, provided in an embodiment of this application;

[0026] Figure 4 A schematic diagram of multiple reference working areas provided in an embodiment of this application;

[0027] Figure 5 A schematic diagram of a display interface provided in an embodiment of this application;

[0028] Figure 6 A functional unit block diagram of a device for processing information on leakage of high-risk transported goods provided in this application embodiment;

[0029] Figure 7 This is a schematic diagram of the structure of a server provided in an embodiment of this application. Detailed Implementation

[0030] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present application.

[0031] The terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or apparatus that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or apparatuses.

[0032] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0033] Please see Figure 1 , Figure 1 This is a schematic diagram of an emergency command system provided in an embodiment of this application. Figure 1As shown, the emergency command system includes a server, a main control console for emergency command personnel connected to the server, terminal equipment for rescue users, and unmanned detection devices. Unmanned detection devices refer to equipment that can perform detection tasks autonomously or under remote control without direct human operation. Examples include drones, intelligent inspection robots, and unmanned ground detection vehicles. The specific type of unmanned detection device is not limited here. Furthermore, the number of unmanned detection devices can be set according to actual needs. It is understood that the number of connected terminal devices can be set according to actual needs and is not limited here.

[0034] Please combine Figure 2A , Figure 2A This is a schematic diagram of a main control console device provided in an embodiment of this application. Figure 2A As shown, the main control console includes a display module 201, a voice module 202, and a control module 203. The display module 201 displays various information to improve the user experience. The voice module 202 collects voice information from the space where the main control console is located or plays voice messages. The control module 203 includes multiple functional controls; triggering these controls allows direct control of the main control console's functions, enabling users to select and control desired functions even in extreme situations. The specific number and associated functions of the controls within the control module 203 can be configured according to actual needs and are not limited here.

[0035] Each control has a corresponding indicator light. The indicator light illuminates when the control is triggered and turns off when the control is closed, allowing the user to determine whether the corresponding function is enabled. It is understood that the main control console device can also be a smartphone, tablet, laptop, desktop computer, wearable device, head-mounted device, in-vehicle terminal, or other terminal device with a control application (i.e., application client) installed. It should be understood that when the application client runs on the main control console device, it can interact with… Figure 1 The server shown interacts with the data.

[0036] In this regard, please combine Figure 2B , Figure 2B This is a schematic diagram of a terminal device provided in an embodiment of this application. The terminal device for the rescue user can be a wearable device or head-mounted device with a control application (i.e., an application client) installed. For example... Figure 2B The wristwatch shown includes a display module, a voice module, and a communication module to facilitate users in receiving and transmitting information. Furthermore, it is designed as a wristwatch for easy carrying and to prevent loss of the device during movement. It should be understood that when the application client is running on the terminal device, it can communicate with… Figure 1 The server shown interacts with the data. It is understood that the terminal device can also be... Figure 2AThe equipment shown is not restricted here.

[0037] Please refer to the following: Figure 3 The system described in the embodiments of this application will be described in detail as follows:

[0038] Please see Figure 3 , Figure 3 This is a flowchart illustrating a method for processing information on leaks of highly hazardous transported goods, provided as an embodiment of this application. Figure 3 As shown, a method for processing information on leaks of high-risk transported goods is applied to a server of an emergency command system. The emergency command system includes the server, a main control console device for emergency command personnel communicating with the server, terminal devices for rescue users, and unmanned detection devices. The method includes:

[0039] S301, in response to the first operation of the main control console device, control the terminal device to display the first interface.

[0040] The first interface includes target operation information and a target operation area corresponding to the target operation information. The target operation information includes a rescue route and is information matched from multiple reference operation information based on the historical operation information of the rescue user. The reference operation information is determined based on the accident type within the reference operation area corresponding to the reference operation information. The accident type is determined based on the type of the high-risk transported goods and the first concentration of the high-risk transported goods collected by the unmanned detection equipment within the reference operation area. The reference operation area is determined based on a preset concentration difference, environmental data, the physicochemical property data of the high-risk transported goods, a concentration calculation formula, and location information collected through the Beidou system.

[0041] After a leak of hazardous materials, different reference work areas are determined based on preset concentration differences, environmental data, the physicochemical properties of the hazardous materials, concentration calculation formulas, and location information collected via the BeiDou system. The type of hazardous material is obtained, and unmanned detection equipment is directed to different reference work areas to collect the initial concentration of the hazardous material within those areas. This determines the type of accident that such a hazardous material would cause at that initial concentration, such as fire, explosion, or poisoning. This ensures that the accident type determined based on the initial concentration and the type of hazardous material is more accurate.

[0042] After determining the accident type, reference operation information corresponding to the reference operation area is determined based on the accident type. This operation information is used to instruct rescue users to carry out rescue operations. After determining multiple reference operation information corresponding to multiple reference operation areas, the historical operation information of the rescue users is matched from the multiple reference operation information to determine the target operation information corresponding to the rescue users and the target operation area corresponding to the target operation information.

[0043] Specifically, a difficulty level can be assigned to each task in the job information. Reference job information is determined based on the number and difficulty level of previously executed tasks in historical job information. For example, the difficulty level with the highest execution frequency in historical job information can be identified first. It is then determined whether the execution frequency corresponding to this difficulty level exceeds a preset number. If it does, a job task with a higher difficulty level is executed; otherwise, the current difficulty level is continued. Target task information is matched from the reference job information based on the determined difficulty level. Then, the determined target job information and target job area are sent to the emergency command personnel's main control console. This allows the emergency command personnel to further confirm whether to assign the rescue user to the target job area and execute the job task within the target job information, improving the rationality of the configuration. If a confirmation operation is received from the emergency command personnel on the main control console, the control terminal displays a first interface, thereby instructing the rescue user to carry out rescue operations.

[0044] S302, obtain the second concentration of the high-risk transported goods obtained by the terminal device and the real-time location information of the rescue user.

[0045] The terminal devices of rescue users can collect the secondary concentration of hazardous transported goods in their environment. Therefore, the server obtains the secondary concentration of hazardous transported goods from the terminal devices and the user's real-time location information to support subsequent data updates. It is understandable that independently designed collection instruments can also be used to collect the secondary concentration of hazardous transported goods in the rescue user's environment; this is not specifically limited here.

[0046] S303, if the second concentration is greater than or equal to the first preset concentration, then the rescue route is updated according to the second concentration, the real-time location information and the target operation area to obtain the first rescue route.

[0047] Specifically, after obtaining the second concentration, if the second concentration is greater than or equal to the first preset concentration, the rescue route is updated based on the second concentration, real-time location information, and the target operation area to obtain the first rescue route. This prevents rescue users from accidentally entering areas where high-concentration, high-risk transported goods may be locally formed due to terrain or other reasons, thus improving safety.

[0048] S304, Update the first interface based on the first rescue route to obtain the second interface.

[0049] After determining the first rescue route, the first interface is updated based on the first rescue route, and a second interface is generated to provide data support for subsequent updates of the terminal device interface.

[0050] S305, control the terminal device to display the second interface.

[0051] The control terminal device displays the second interface, providing real-time information to rescue users and improving the effectiveness of the information.

[0052] As can be seen, in this example, identifying different reference work areas and determining reference work information based on the accident type within each reference work area enables the rapid determination of the work information corresponding to each work area. Rescue users can match the target work information from multiple reference work information sources, improving the efficiency and rationality of the determination, enabling rescue users to respond quickly and improving the safety of rescue users during the rescue process.

[0053] In one possible example, the physicochemical property data includes the leakage source intensity and leakage source height, the location information includes the location information of the high-risk transport goods leakage point, and the reference operating area is determined according to the following steps: A coordinate system with the high-risk transport goods leakage point as the origin is established based on the location information and the wind direction in the environmental data; the horizontal diffusion parameter calculation formula and the vertical diffusion parameter calculation formula are determined for each coordinate point in the coordinate system based on the environmental data; the horizontal diffusion parameter and the vertical diffusion parameter calculation formula are calculated for each coordinate point to obtain a diffusion parameter set consisting of multiple coordinate points in the coordinate system, multiple horizontal diffusion parameters corresponding to the multiple coordinate points, and multiple vertical diffusion parameters; the leakage source intensity, leakage source height, wind speed in the environmental data, and multiple horizontal and vertical diffusion parameters corresponding to the multiple coordinate points in the diffusion parameter set are substituted into the concentration calculation formula to obtain multiple concentrations corresponding to the multiple coordinate points, as follows:

[0054] ;

[0055] Among them, the Let Q be the concentration at coordinate point (x, y, z) within the plurality of coordinate points, Q be the leakage source intensity, H be the leakage source height, and u be the wind speed. The horizontal diffusion parameter is one of the plurality of horizontal diffusion parameters. The vertical diffusion parameter is one of the plurality of vertical diffusion parameters; the reference working area is determined based on the preset concentration difference and the plurality of concentrations.

[0056] In a specific example, the physicochemical property data of the hazardous transported goods includes the leakage source intensity and leakage source height. Leakage source intensity refers to the volumetric flow rate of fluid or gas leaked per unit time during a leakage accident. Leakage source height refers to the vertical position of the leakage source in space. The leakage source height can be determined based on infrared detector detection or by detecting the location of the hazardous transported goods' leakage source using the BeiDou system. The location information collected through the BeiDou system includes the location of the hazardous transported goods leakage point. Environmental data includes wind direction, wind speed, sunshine duration, cloud cover, etc. In this example, a coordinate system is established with the hazardous transported goods leakage point within the location information as the origin and wind direction as the z-axis. Atmospheric stability is determined based on wind speed, sunshine duration, cloud cover, etc., and the horizontal and vertical diffusion parameters are calculated based on atmospheric stability at different coordinate points within the coordinate system. Calculate the horizontal and vertical diffusion parameters for each coordinate point using the corresponding formulas, thus obtaining multiple horizontal and vertical diffusion parameters for multiple coordinate points. A diffusion parameter set is then formed based on these multiple coordinate points and their corresponding horizontal and vertical diffusion parameters.

[0057] By substituting the leakage source intensity and height from the physicochemical property data, the wind speed from the environmental data, and multiple horizontal and vertical diffusion parameters corresponding to multiple coordinate points within the diffusion parameter set into the concentration calculation formula, multiple concentrations corresponding to multiple coordinate points are obtained. The concentration calculation formula is as follows:

[0058] ;

[0059] in, Let Q be the concentration at coordinate point (x, y, z) within a set of multiple coordinate points, Q be the leakage source intensity, H be the leakage source height, and u be the wind speed. For the horizontal diffusion parameter among multiple horizontal diffusion parameters, This refers to the vertical diffusion parameter among multiple vertical diffusion parameters.

[0060] After obtaining multiple concentrations corresponding to multiple coordinate points, a reference working area is determined based on the preset concentration difference and multiple concentrations.

[0061] As can be seen in this example, the concentration at each coordinate point in the coordinate system with the leak point of the high-risk transported goods as the origin is calculated, and then multiple reference work areas are determined based on the concentration, thereby improving the rationality of the determined reference work areas.

[0062] In one possible example, please combine Figure 4 , Figure 4 This is a schematic diagram of multiple reference working areas provided in an embodiment of this application, such as... Figure 4As shown, determining the reference work area based on the preset concentration difference and the plurality of concentrations includes: finding multiple target concentrations that differ sequentially from the preset concentration starting from the concentration at the origin among the plurality of concentrations; determining multiple coordinate points corresponding to the plurality of target concentrations; grouping coordinate points belonging to the same concentration among the plurality of coordinate points to obtain multiple coordinate point combinations; determining multiple reference work area boundaries 402 based on the multiple coordinate point combinations; and determining the reference work area based on the multiple reference work area boundaries 402.

[0063] In a specific example, after obtaining multiple concentrations corresponding to multiple coordinate points, the concentrations differing from the origin of the coordinate system by a preset concentration difference are determined based on the preset concentration difference. The coordinate points corresponding to these preset concentration differences are then determined. For example, multiple first coordinate points differing from the origin by a preset concentration difference are determined, and then second coordinate points differing from the first coordinate points by the preset concentration difference are determined along the direction from the origin towards the first coordinate points. The multiple coordinate points corresponding to multiple target concentrations are integrated with these first and second coordinate points. Coordinate points belonging to the same concentration among the multiple coordinate points are grouped together. (See also...) Figure 4 Starting from the location 401 of the high-risk transport goods leak point, a reference work area edge 402 is determined based on a combination of coordinate points, and multiple reference work area boundaries 402 are determined based on multiple combinations of coordinate points. Then, a reference work area is determined based on two adjacent reference work area boundaries 402.

[0064] As can be seen, in this example, dividing the reference operation area based on concentration ensures that the risks within the same reference operation area are more consistent, thereby improving the rationality of the determined reference operation area and enhancing rescue efficiency and safety during the rescue process.

[0065] In one possible example, the reference operation information is determined according to the following steps: if the accident type is a fire or explosion, the reference operation information is determined based on the environmental data and the location information; if the accident type includes toxicity, the reference operation information is determined based on the environmental data, the location information, and the third concentration of the hazardous transported goods within the reference operation area.

[0066] In a specific example, the accident type includes at least one of fire, explosion, fire, or toxic hazard. If the accident type is fire or explosion, reference operation information is determined based on environmental data and location information; if the accident type includes toxic hazard, reference operation information is determined based on environmental data, location information, and the third concentration of hazardous transported goods within the reference operation area.

[0067] As can be seen, in this example, different reference operation information is determined according to different accident types, making the determined reference operation information more reasonable and accurate, and improving the operation efficiency of rescue users.

[0068] In one possible example, if the accident type is a fire or explosion, determining the reference operation information based on the environmental data and the location information includes: if the accident type is a fire or explosion, generating an evacuation instruction message, which instructs the rescue user to direct the evacuation of users to be rescued within the reference operation area; acquiring the wind direction in the environmental data and the personnel location information of the users to be rescued within the reference operation area in the location information; if it is determined that the direction opposite to the wind direction is high terrain, setting the direction opposite to the wind direction as a first evacuation direction; determining a first personnel rescue order based on the first evacuation direction and the personnel location information; determining a first reference rescue route based on the first personnel rescue order; generating the reference operation information based on the first reference rescue route and the evacuation instruction message; if it is determined that the direction opposite to the wind direction is low terrain or flat terrain, setting the direction perpendicular to the wind direction as a second retreat direction; determining a second personnel rescue order based on the second retreat direction and the personnel location information; determining a second reference rescue route based on the second personnel rescue order; and generating the reference operation information based on the second reference rescue route and the evacuation instruction message.

[0069] In a specific example, if the accident type is fire or explosion, an evacuation instruction message is generated. This message instructs rescue users to evacuate users awaiting rescue within the designated work area. First, the wind direction from the environmental data and the location information of the users awaiting rescue within the designated work area are obtained. Then, it is determined whether the direction opposite to the wind direction is high ground; if so, this direction is set as the first evacuation direction. Next, the first rescue order is determined based on the location information of the users awaiting rescue and the first evacuation direction.

[0070] Specifically, if there are multiple users to be rescued, priority should be given to the user closest to the leak point of the high-risk transported goods, then the user furthest from the leak point should be rescued, and finally evacuate from the first evacuation direction.

[0071] For example, please see Figure 5 , Figure 5 This is a schematic diagram of a display interface provided in an embodiment of this application. For example... Figure 5As shown, the terminal device's display interface includes multiple straight lines with arrows, which represent the determined reference rescue routes. The direction of the arrows indicates the movement direction of the rescue users. Specifically, the first location icon 501 represents the location of the first user to be rescued, the second location icon 502 represents the location of the second user to be rescued, and the third location icon 503 represents the location of the rescue user. Since the first user to be rescued is closer to the leak point of the high-risk transported goods, the reference rescue route prioritizes moving to the location corresponding to the first location icon 501, then to the location corresponding to the second location icon 502, and finally evacuates in the direction opposite to the wind direction. The first reference rescue route is determined based on the rescue order of the first personnel, and then reference operation information is generated based on the first reference rescue route and the evacuation instruction message. When displayed on the interface, the evacuation instruction message within the reference operation information can be displayed in the message display area 504 of the interface for quick presentation, improving the efficiency of obtaining rescue user information.

[0072] Understandably, the evacuation instruction message can also be broadcast via voice on the terminal device to improve the user experience for rescuers. Furthermore, the reference operation information may also include guidance messages, generated based on the accident type of the reference operation area. These guidance messages include instructions on how rescuers should protect themselves; for example, in a smoke-filled fire, an air-filtering mask is required, and instructions on how to wear the mask are provided. This aims to remind rescuers to take appropriate protective measures and improve safety.

[0073] Because highly hazardous transported goods are more likely to flow into low-lying areas and accumulate in depressions, increasing the level of danger, if the direction opposite to the wind direction is determined to be low-lying or flat terrain, the direction perpendicular to the wind direction is designated as the second evacuation direction. This improves the rationality of the determined reference rescue route and enhances safety during evacuation. Based on the second evacuation direction and personnel location information, a second personnel rescue sequence is determined. Then, based on this second personnel rescue sequence, a second reference rescue route is determined. Reference operational information is then generated based on the second reference rescue route and the evacuation instruction message.

[0074] As can be seen in this example, if the accident type is determined to be a fire or an explosion, the reference operation information includes evacuation instruction messages instructing users to evacuate, as well as reference rescue routes determined based on environmental data such as wind direction, thereby improving the rationality and reliability of the determined reference operation information.

[0075] In one possible example, the reference operation information may also include the concentration of hazardous materials transported through each reference operation area along the reference rescue route. Specifically, when displaying the rescue route on the display interface, the concentration of hazardous materials transported through the reference operation areas along the route is displayed, for example, on the reference operation area itself, to provide real-time alerts to the user. Alternatively, different colors can be used to indicate reference operation areas with different concentrations of hazardous materials transported, and when the rescue user clicks on a reference operation area, the terminal device announces the concentration value of the hazardous materials transported in that area based on the user's action on the display interface. For example, red could be used to indicate a concentration between the first and second concentrations, and orange could be used to indicate a concentration lower than the second, where the first concentration is higher than the second. This allows rescue users to promptly obtain concentration information for different reference operation areas, thereby adjusting their protective measures and improving safety.

[0076] In one possible example, if the accident type includes toxicity, determining the reference operation information based on the environmental data, the location information, and the third concentration of the hazardous transported goods within the reference operation area includes: if the accident type includes toxicity, acquiring the wind direction in the environmental data, the personnel location information of the users to be rescued within the reference operation area in the location information, and the third concentration of the hazardous transported goods; if the third concentration exceeds a second preset concentration, generating a personnel in-situ protection strategy, which instructs the rescue user to direct the users to be rescued to take in-situ protection measures; based on the wind direction... The personnel notification order is determined based on the personnel location information; a third reference rescue route is generated based on the personnel notification order; reference operation information is generated based on the third reference rescue route and the in-situ protection strategy; if the third concentration does not exceed the second preset concentration, an evacuation instruction message is generated, which is used to instruct the rescue user to direct the users to be rescued in the reference operation area to evacuate; a third personnel rescue order is determined based on the wind direction and the personnel location information; a fourth reference rescue route is determined based on the third personnel rescue order; and reference operation information is generated based on the fourth reference rescue route and the evacuation instruction message.

[0077] In a specific example, if the accident type includes toxicity, the system acquires wind direction from the environmental data, the location information of personnel awaiting rescue within the reference work area from the location information, and the third concentration of the hazardous transported goods. If the third concentration exceeds a second preset concentration, a personnel in-situ protection strategy is generated. This strategy instructs the rescue user to direct the personnel awaiting rescue to take in-situ protective measures to prevent their health from being compromised during evacuation due to a lack of professional protective equipment. The system determines the personnel notification sequence based on wind direction and personnel location information to notify the personnel awaiting rescue to ensure the environment is sealed, such as by closing doors and windows and activating ventilation systems. A third reference rescue route is generated based on the personnel notification sequence, and then reference work information is generated based on the third reference rescue route and the in-situ protection strategy.

[0078] If the third concentration does not exceed the second preset concentration, an evacuation instruction message is generated. This message instructs the rescue user to evacuate the users awaiting rescue within the designated reference operation area. Specifically, the rescue order for the third group of personnel is determined based on wind direction and personnel location information. Then, a fourth reference rescue route is determined based on this order. Reference operation information is generated based on the fourth reference rescue route and the evacuation instruction message.

[0079] As can be seen in this example, when the accident type is determined to include toxicity, the decision to evacuate users awaiting rescue is based on the concentration of the high-risk transported goods, thereby improving the rationality of the determined reference operation information and ensuring personnel safety.

[0080] In one possible example, if the third concentration exceeds the second preset concentration, and a user awaiting rescue in an exposed environment is detected within the reference working area, and the distance between the user awaiting rescue in the exposed environment and a sheltered building exceeds a preset distance, then the rescue user can be prompted to carry protective equipment to provide assistance to the user awaiting rescue in the exposed environment and improve the timeliness of the rescue.

[0081] Specifically, the location information of the first person in the exposed environment among the users to be rescued is determined. A fifth reference rescue route is generated based on the location of the rescue user and the location information of the first person in the exposed environment. It is then determined whether there are other users to be rescued along this fifth reference rescue route. If so, the rescue user can be instructed to direct the users to take shelter in place while en route to the location of the first person. After reaching the location of the first person, a sixth reference rescue route is generated based on the second location information of the other users to be rescued. Reference operation information is then generated based on the sixth reference rescue route and the evacuation instruction message. This improves intelligence and makes the formulated reference operation information more reasonable.

[0082] In one possible example, if the third concentration exceeds the second preset concentration, and the reference work area includes multiple users awaiting rescue, or the distance between users awaiting rescue exceeds a preset distance value, multiple rescue users can be assigned to the same reference work area. Different work information can be assigned to each rescue user to improve rescue efficiency. For example, the first and second rescue users can be prioritized and dispatched to the locations of the first and second users awaiting rescue, respectively. Then, the third and fourth rescue users can be dispatched with protective gear to the locations of the first and second users awaiting rescue, improving the timeliness of communication between the first and second rescue users. After a preset waiting period, the concentration of the leaked hazardous materials will further decrease, allowing the users awaiting rescue to obtain protective gear and evacuate safely, avoiding prolonged stays in toxic areas that could harm their health.

[0083] In one possible example, if the third concentration exceeds the second preset concentration, and the reference work area includes multiple users awaiting rescue, or the distance between users awaiting rescue exceeds a preset distance value, multiple rescue users can be assigned to the same reference work area to carry out the operation. Different work information is assigned to each rescue user to improve rescue efficiency. Simultaneously, the real-time location information of each user awaiting rescue and the real-time location information of the rescue users are reacquired at preset intervals. The rescue route for each rescue user is updated based on the acquired real-time location information of the users awaiting rescue and the rescue users.

[0084] For example, dispatching a first rescuer to the location of a first user awaiting rescue, and dispatching a second rescuer to the location of a second user awaiting rescue. At preset intervals, the locations of the first rescuer, second rescuer, first user awaiting rescue, and second user awaiting rescue are reacquired, and the rescue route for the first rescuer is updated based on their locations. Similarly, the rescue route for the second rescuer is updated based on their locations. By acquiring the location information of rescuers and users awaiting rescue in real time, the rescue routes become more accurate, thereby improving rescue efficiency.

[0085] In one possible example, if it is determined that a first rescue user will be dispatched to the location of a first user awaiting rescue, and a second rescue user will be dispatched to the location of a second user awaiting rescue, the first location of the first rescue user, the second location of the second rescue user, the third location of the first user awaiting rescue, and the fourth location of the second user awaiting rescue are reacquired at preset intervals. A first distance value between the first and third locations, a second distance value between the first and fourth locations, a third distance value between the second and third locations, and a fourth distance value between the second and fourth locations are calculated. If the second distance value is less than the first distance value, and the third distance value is less than the fourth distance value, a rescue interaction message is generated to notify the first and second rescue users whether to exchange rescue tasks. The rescue interaction message is then sent to the terminal devices of both the first and second rescue users. If the first and second rescue users agree to exchange rescue tasks, the first rescue user's task information is updated based on the second rescue user's original assigned task information, the first rescue user's first location, and the second user's fourth location. Similarly, the second rescue user's task information is updated based on the first rescue user's original assigned task information, the second location of the second rescue user, and the third location of the first user awaiting rescue. This improves work efficiency.

[0086] In one possible example, after obtaining the second concentration of the high-risk transported goods obtained by the terminal device and the real-time location information of the rescue user, the method further includes: if the second concentration is less than the first preset concentration, determining a reference work area corresponding to the real-time location information; obtaining a fourth concentration of the reference work area corresponding to the real-time location information; if the second concentration is greater than the fourth concentration, updating the reference work information of the reference work area corresponding to the real-time location information based on the second concentration and the real-time location information to obtain updated reference work information; generating a third interface based on the updated reference work information; and controlling the terminal device corresponding to the reference work area corresponding to the real-time location information to display the third interface.

[0087] In a specific example, after obtaining the second concentration of the high-risk transported goods and the real-time location information of the rescue user from the terminal device, if the second concentration is less than the first preset concentration, a reference operation area corresponding to the real-time location information is determined. A fourth concentration is then obtained from the reference operation area via unmanned detection equipment. If the second concentration is greater than the fourth concentration, the reference operation information for the reference operation area corresponding to the real-time location information is updated based on the second concentration and the real-time location information.

[0088] Specifically, the system checks whether the reference rescue route in the original reference operation information for the reference operation area passes through the location in the real-time location information. If it does, the reference rescue route is modified. If it does not, a prompt message based on the real-time location information is generated to remind the personnel to move away from the location in the real-time location information. Based on the modified reference rescue route or the generated prompt message, the original reference operation information is updated to obtain the updated reference operation information. A third interface is generated based on the updated reference operation information; the terminal device corresponding to the reference operation area corresponding to the real-time location information is controlled to display the third interface. For example, based on the real-time location information and the second concentration collected by the terminal device of the first rescue user, the updated reference operation information for the first reference operation area is obtained. The original reference operation information corresponding to the first reference operation area is assigned to the second rescue user, so the terminal device of the second rescue user displays the third interface generated based on the updated reference operation information.

[0089] As can be seen in this example, the operation information is updated in real time based on the information collected by the rescuers' terminal devices, which improves the timeliness and reliability of the operation information and ensures the safety of the rescue users.

[0090] In one possible example, before controlling the terminal device to display the first interface in response to the first operation of the main control device, it is also possible to: acquire fixed location information of the fixed storage location, and determine whether a leak of high-risk transported goods has occurred at the fixed storage location based on the fixed location information and location information collected by the BeiDou system. The fixed storage location can be a chemical plant or production workshop, etc., and is equipped with multiple sensor devices. Each sensor in these devices is connected to a server for data exchange. If a leak of high-risk transported goods is determined based on the location information collected by the BeiDou system, the server can acquire the fixed-location concentration of the high-risk transported goods detected by sensor devices at different locations within the fixed storage location. Different reference operating areas are determined by using preset concentration differences, environmental data, physicochemical property data of the high-risk transported goods, concentration calculation formulas, and location information collected by the BeiDou system. The type of high-risk transported goods is acquired, and the fixed-location concentration corresponding to different reference operating areas is determined, thereby determining the type of accident that such a high-risk transported goods would cause at a fixed-location concentration, such as fire, explosion, or poisoning, to improve the efficiency of the determination.

[0091] In one possible example, before controlling the terminal device to display the first interface in response to the first operation of the main control device, the following steps can be taken: Obtain fixed location information of the fixed storage location; determine whether a leak of hazardous transported goods has occurred at the fixed storage location based on the fixed location information and location information collected by the BeiDou system. If a leak of hazardous transported goods at the fixed storage location is determined based on the location information collected by the BeiDou system, the server can obtain the fixed-location concentration of hazardous transported goods detected by sensor devices at different locations of the fixed storage location. Different reference operating areas are determined by using preset concentration differences, environmental data, physicochemical property data of hazardous transported goods, concentration calculation formulas, and location information collected by the BeiDou system. The type of hazardous transported goods is obtained, and unmanned detection equipment is controlled to go to different reference operating areas to collect the first concentration of hazardous transported goods in the operating area, and the fixed-location concentration corresponding to different reference operating areas is determined. The average concentration of the first concentration and the fixed-location concentration in each reference operating area is calculated. This determines the type of accident that this type of hazardous transported goods will cause under the average concentration, further improving the accuracy of the determined accident type.

[0092] The above primarily describes the solutions of the embodiments of this application from the perspective of the method execution process. It is understood that, in order to achieve the above functions, the electronic device includes corresponding hardware structures and / or software modules for executing each function. Those skilled in the art should readily recognize that, in conjunction with the units and algorithm steps of the various examples described in the embodiments provided herein, this application can be implemented in hardware or a combination of hardware and computer software. Whether a function is executed by hardware or by computer software driving hardware depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this application.

[0093] This application embodiment can divide the electronic device into functional units according to the above method example. For example, each function can be divided into a separate functional unit, or two or more functions can be integrated into one processing unit. The integrated unit can be implemented in hardware or as a software functional unit. It should be noted that the unit division in this application embodiment is illustrative and only represents one logical functional division. In actual implementation, there may be other division methods.

[0094] When dividing functional modules according to their respective functions, the following is combined with... Figure 6 The apparatus for processing information on leakage of hazardous transported goods in the embodiments of this application will be described in detail. Figure 6 This is a functional unit block diagram of a device for processing information on leaks of highly hazardous transported goods, provided as an embodiment of this application. Figure 6As shown, a device for processing information on leaks of high-risk transported goods is applied to the server of an emergency command system. The emergency command system includes the server, a main control console device for emergency command personnel and terminal devices for rescue users that are communicatively connected to the server. The device includes:

[0095] The first control unit 601 is configured to respond to a first operation of the main control console device and control the terminal device to display a first interface. The first interface includes target operation information and a target operation area corresponding to the target operation information. The target operation information includes a rescue route. The target operation information is information matched from multiple reference operation information based on the historical operation information of the rescue user. The reference operation information is determined based on the accident type within the reference operation area corresponding to the reference operation information. The accident type is determined based on the type of the high-risk transported goods and the first concentration of the high-risk transported goods collected by the unmanned detection device within the reference operation area. The reference operation area is determined based on a preset concentration difference, environmental data, physicochemical property data of the high-risk transported goods, concentration calculation formula, and location information collected through the Beidou system.

[0096] The acquisition unit 602 is used to acquire the second concentration of the high-risk transported goods obtained by the terminal device and the real-time location information of the rescue user;

[0097] The first updating unit 603 is used to update the rescue route according to the second concentration, the real-time location information and the target operation area if the second concentration is greater than or equal to the first preset concentration, so as to obtain the first rescue route;

[0098] The second update unit 604 is used to update the first interface based on the first rescue route to obtain the second interface;

[0099] The second control unit 605 is used to control the terminal device to display the second interface.

[0100] In one possible example, the physicochemical property data includes the leakage source intensity and leakage source height, the location information includes the location information of the high-risk transport goods leakage point, and the reference operating area is determined according to the following steps: establishing a coordinate system with the high-risk transport goods leakage point as the origin based on the location information and the wind direction in the environmental data; determining the horizontal diffusion parameter calculation formula and the vertical diffusion parameter calculation formula corresponding to each coordinate point in the coordinate system based on the environmental data; calculating the horizontal diffusion parameter and the vertical diffusion parameter corresponding to each coordinate point based on the horizontal diffusion parameter calculation formula and the vertical diffusion parameter calculation formula to obtain a diffusion parameter set composed of multiple coordinate points in the coordinate system, multiple horizontal diffusion parameters corresponding to the multiple coordinate points, and multiple vertical diffusion parameters; substituting the leakage source intensity, leakage source height, wind speed in the environmental data, and multiple horizontal diffusion parameters and multiple vertical diffusion parameters corresponding to the multiple coordinate points in the diffusion parameter set into the concentration calculation formula to obtain multiple concentrations corresponding to the multiple coordinate points, the concentration calculation formula being as follows:

[0101] ;

[0102] Among them, the Let Q be the concentration at coordinate point (x, y, z) within the plurality of coordinate points, Q be the leakage source intensity, H be the leakage source height, and u be the wind speed. The horizontal diffusion parameter is one of the plurality of horizontal diffusion parameters. The vertical diffusion parameter is one of the plurality of vertical diffusion parameters; and the reference working area is determined based on the preset concentration difference and the plurality of concentrations.

[0103] In one possible example, determining the reference work area based on the preset concentration difference and the plurality of concentrations includes: finding multiple target concentrations that differ sequentially from the preset concentration starting from the origin among the plurality of concentrations; determining multiple coordinate points corresponding to the plurality of target concentrations; grouping coordinate points belonging to the same concentration among the plurality of coordinate points to obtain multiple coordinate point combinations; determining multiple reference work area boundaries based on the multiple coordinate point combinations; and determining the reference work area based on the multiple reference work area boundaries.

[0104] In one possible example, the reference operation information is determined according to the following steps: if the accident type is a fire or explosion, the reference operation information is determined based on the environmental data and the location information; and if the accident type includes toxicity, the reference operation information is determined based on the environmental data, the location information, and the third concentration of the hazardous transported goods within the reference operation area.

[0105] In one possible example, if the accident type is a fire or explosion, determining the reference operation information based on the environmental data and the location information includes: if the accident type is a fire or explosion, generating an evacuation instruction message, the evacuation instruction message being used to instruct the rescue user to direct the users to be rescued within the reference operation area to evacuate; and obtaining the wind direction in the environmental data and the personnel location information of the users to be rescued within the reference operation area in the location information; and if it is determined that the direction opposite to the wind direction is high terrain, setting the direction opposite to the wind direction as the first evacuation direction; and based on the first evacuation direction... The system determines a first personnel rescue order based on the personnel location information; determines a first reference rescue route based on the first personnel rescue order; generates reference operation information based on the first reference rescue route and the evacuation instruction message; if it is determined that the direction opposite to the wind direction is low terrain or flat terrain, then the direction perpendicular to the wind direction is set as a second evacuation direction; determines a second personnel rescue order based on the second evacuation direction and the personnel location information; determines a second reference rescue route based on the second personnel rescue order; and generates reference operation information based on the second reference rescue route and the evacuation instruction message.

[0106] In one possible example, if the accident type includes toxicity, determining the reference operation information based on the environmental data, the location information, and the third concentration of the high-risk transported goods within the reference operation area includes: if the accident type includes toxicity, acquiring the wind direction in the environmental data, the personnel location information of the users to be rescued within the reference operation area in the location information, and the third concentration of the high-risk transported goods; and if the third concentration exceeds a second preset concentration, generating a personnel in-situ protection strategy, which instructs the rescue user to direct the users to be rescued to take in-situ protection measures; and determining the reference operation information based on the wind direction and the personnel location information within the reference operation area. The system determines the personnel notification order based on personnel location information; generates a third reference rescue route based on the personnel notification order; generates reference operation information based on the third reference rescue route and the in-situ protection strategy; generates an evacuation instruction message if the third concentration does not exceed the second preset concentration, the evacuation instruction message instructs the rescue user to direct the users to be rescued in the reference operation area to evacuate; determines a third personnel rescue order based on wind direction and personnel location information; determines a fourth reference rescue route based on the third personnel rescue order; and generates the reference operation information based on the fourth reference rescue route and the evacuation instruction message.

[0107] In one possible example, the device further includes a determining unit, configured to: determine a reference work area corresponding to the real-time location information if the second concentration is less than the first preset concentration; obtain a fourth concentration of the reference work area corresponding to the real-time location information; update the reference work information of the reference work area corresponding to the real-time location information based on the second concentration and the real-time location information if the second concentration is greater than the fourth concentration, thereby obtaining updated reference work information; generate a third interface based on the updated reference work information; and control a terminal device corresponding to the reference work area corresponding to the real-time location information to display the third interface.

[0108] Please combine Figure 7 , Figure 7 This is a schematic diagram of the structure of a server provided in an embodiment of this application. Figure 7 As shown, the server includes a processor 701, a communication module 702, a memory 703, and a program 704. The number of processors 701 can be set according to actual needs. The processors 701 are connected to the memory 703 and the communication module 702 via an internal communication bus.

[0109] The program 704 is stored in the memory 703 and is configured to be executed by the processor 701. The program 704 includes instructions for performing any step in the above method embodiments. It is understood that the number of programs 704 can be set according to actual needs, and no specific limitation is made here.

[0110] The processor 701 may be, for example, a central processing unit (CPU), a general-purpose processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA), or other programmable logic devices, transistor logic devices, hardware components, or any combination thereof. It can implement or execute the various exemplary logic blocks, cells, and circuits described in conjunction with the disclosure of this application. The processor 701 may also be a combination that implements computational functions, such as a combination of one or more microprocessors, a combination of a DSP and a microprocessor, etc. The communication unit may be a communication module 702, a transceiver, a transceiver circuit, etc., and the storage unit may be a memory 703.

[0111] The memory 703 can be volatile memory or non-volatile memory, or it can include both. The non-volatile memory can be read-only memory (ROM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), or flash memory. The volatile memory can be random access memory (RAM), which is used as an external cache. By way of example, but not limitation, many forms of random access memory (RAM) are available, such as static RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), double data rate synchronous DRAM (DDRSDRAM), enhanced synchronous DRAM (ESDRAM), synchronous linked DRAM (SLDRAM), and direct rambus RAM (DRRAM).

[0112] The above embodiments can be implemented, in whole or in part, by software, hardware, firmware, or any other combination thereof. When implemented using software, the above embodiments can be implemented, in whole or in part, as a computer program product. The computer program product includes one or more computer instructions or computer programs. When the computer instructions or computer programs are loaded or 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 from one computer-readable storage medium to another. For example, the computer instructions can be transmitted from one website, computer, server, or data center to another website, computer, server, or data center via wired or wireless 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 includes one or more sets of 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. A semiconductor medium can be a solid-state drive.

[0113] This application also provides a computer storage medium storing a computer program for electronic data interchange, which causes a computer to perform some or all of the steps of any of the methods described in the above method embodiments, wherein the computer includes an electronic device.

[0114] This application also provides a computer program product, which includes a computer program operable to cause a computer to perform some or all of the steps of any of the methods described in the above method embodiments.

[0115] The computer program product may be a software installation package, and the aforementioned computer includes electronic devices.

[0116] It should be understood that in the various embodiments of this application, the order of the above-mentioned processes does not imply the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of this application.

[0117] In the several embodiments provided in this application, it should be understood that the disclosed methods, apparatuses, and systems can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for example, the division of units is merely a logical functional division, and other division methods may exist in actual implementation; for example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces, and the indirect coupling or communication connection between devices or units may be electrical, mechanical, or other forms.

[0118] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.

[0119] Furthermore, the functional units in the various embodiments of the present invention can be integrated into one processing unit, or each unit can be physically comprised separately, or two or more units can be integrated into one unit. The integrated unit described above can be implemented in hardware or in the form of hardware plus software functional units.

[0120] The integrated units implemented as software functional units described above can be stored in a computer-readable storage medium. These software functional units, stored in a storage medium, include several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute some steps of the methods described in the various embodiments of the present invention. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.

[0121] While the present invention has been disclosed above, it is not limited thereto. Any person skilled in the art can easily conceive of variations or substitutions without departing from the spirit and scope of the present invention, and various modifications and alterations can be made, including combinations of the different functions and implementation steps described above, as well as software and hardware implementation methods, all of which are within the protection scope of the present invention.

Claims

1. A method for processing high-risk cargo leakage information, characterized in that, The application relates to a server applied to an emergency command system, wherein the emergency command system comprises the server, a main console device of an emergency command personnel, a terminal device of a rescue user and an unmanned detection device, and the method comprises the following steps: in response to a first operation of the main console device, a first interface is displayed on the terminal device, the first interface comprises target operation information and a target operation region corresponding to the target operation information, the target operation information comprises a rescue route, the target operation information is information matched from a plurality of reference operation information according to historical operation information of the rescue user, the reference operation information is determined according to an accident type in a reference operation region corresponding to the reference operation information, the accident type is determined according to a type of the high-risk transportation product and a first concentration of the high-risk transportation product collected based on the unmanned detection device in the reference operation region, the reference operation region is determined according to a preset concentration difference, environmental data, physicochemical property data of the high-risk transportation product, a concentration calculation formula and position information collected through a Beidou system; a second concentration of the high-risk transportation product obtained by the terminal device and real-time position information of the rescue user are acquired; if the second concentration is greater than or equal to a first preset concentration, the rescue route is updated according to the second concentration, the real-time position information and the target operation region, and a first rescue route is obtained; the first interface is updated based on the first rescue route, and a second interface is obtained; the terminal device is controlled to display the second interface.

2. The method of claim 1, wherein, The physicochemical property data comprises leakage source intensity and leakage source height, the position information comprises high-risk transportation product leakage point position information, and the reference operation region is determined according to the following steps: a coordinate system with the high-risk transportation product leakage point as an origin is established based on the position information and a wind direction in the environmental data; horizontal diffusion parameter calculation formulas and vertical diffusion parameter calculation formulas corresponding to each coordinate point in the coordinate system are respectively determined based on the environmental data; horizontal diffusion parameters and vertical diffusion parameters corresponding to each coordinate point are calculated based on the horizontal diffusion parameter calculation formulas and the vertical diffusion parameter calculation formulas, and a diffusion parameter set composed of a plurality of coordinate points in the coordinate system, a plurality of horizontal diffusion parameters corresponding to the plurality of coordinate points and a plurality of vertical diffusion parameters corresponding to the plurality of coordinate points is obtained; the leakage source intensity and the leakage source height in the physicochemical property data, a wind speed in the environmental data and a plurality of horizontal diffusion parameters and a plurality of vertical diffusion parameters corresponding to a plurality of coordinate points in the diffusion parameter set are brought into the concentration calculation formula, so that a plurality of concentrations corresponding to the plurality of coordinate points is obtained, and the concentration calculation formula is as follows: ; Among them, the Let Q be the concentration at coordinate point (x, y, z) within the plurality of coordinate points, Q be the leakage source intensity, H be the leakage source height, and u be the wind speed. The horizontal diffusion parameter is one of the plurality of horizontal diffusion parameters. The vertical diffusion parameter is one of the plurality of vertical diffusion parameters; the reference operation region is determined according to the preset concentration difference and the plurality of concentrations.

3. The method of claim 2, wherein, The reference operation region is determined according to the preset concentration difference and the plurality of concentrations, and the method comprises the following steps: a plurality of target concentrations are found in the plurality of concentrations, and the plurality of target concentrations are sequentially different from a concentration of the origin by the preset concentration difference; a plurality of coordinate points corresponding to the plurality of target concentrations are determined; The coordinate points belonging to the same concentration in the plurality of coordinate points are set as a group, and a plurality of coordinate point combinations are obtained; A plurality of reference operation area boundaries are determined according to the plurality of coordinate point combinations; The reference operation area is determined according to the plurality of reference operation area boundaries.

4. The method of claim 2, wherein, The reference operation information is determined according to the following steps: If the accident type is fire or explosion, the reference operation information is determined according to the environmental data and the location information; If the accident type includes poisoning, the reference operation information is determined according to the environmental data, the location information, and the third concentration of the high-risk transport goods in the reference operation area.

5. The method of claim 4, wherein, The reference operation information is determined according to the following steps: If the accident type is fire or explosion, an evacuation instruction message is generated, which is used to instruct the rescue user to command the users to be rescued in the reference operation area to evacuate; The personnel location information of the users to be rescued in the reference operation area in the location information is obtained according to the wind direction in the environmental data; If it is determined that the direction opposite to the wind direction is high terrain, the direction opposite to the wind direction is set as the first evacuation direction; A first personnel rescue sequence is determined according to the first evacuation direction and the personnel location information; A first reference rescue route is determined according to the first personnel rescue sequence; The reference operation information is generated according to the first reference rescue route and the evacuation instruction message; If it is determined that the direction opposite to the wind direction is low terrain or flat terrain, the direction perpendicular to the wind direction is set as the second evacuation direction; A second personnel rescue sequence is determined according to the second evacuation direction and the personnel location information; A second reference rescue route is determined according to the second personnel rescue sequence; The reference operation information is generated according to the second reference rescue route and the evacuation instruction message.

6. The method of claim 4, wherein, The reference operation information is determined according to the following steps: If the accident type includes poisoning, the personnel location information of the users to be rescued in the reference operation area and the third concentration of the high-risk transport goods in the location information are obtained according to the wind direction in the environmental data; If the third concentration exceeds a second preset concentration, a personnel in-place protection strategy is generated, which is used to instruct the rescue user to command the users to be rescued to perform in-place protection; A personnel notification sequence is determined according to the wind direction and the personnel location information; A third reference rescue route is generated according to the personnel notification sequence; The reference operation information is generated according to the third reference rescue route and the in-place protection strategy; If the third concentration does not exceed the second preset concentration, an evacuation instruction message is generated, which is used to instruct the rescue user to command the users to be rescued in the reference operation area to evacuate; A third personnel rescue sequence is determined according to the wind direction and the personnel location information; A fourth reference rescue route is determined according to the third personnel rescue sequence; The reference operation information is generated according to the fourth reference rescue route and the evacuation instruction message.

7. The method of claim 1, wherein, After the second concentration of the high-risk transport goods obtained by the terminal device and the real-time location information of the rescue user are acquired, the method further comprises: If the second concentration is less than the first preset concentration, a reference operation area corresponding to the real-time location information is determined; A fourth concentration of the reference operation area corresponding to the real-time location information is acquired; If the second concentration is greater than the fourth concentration, reference operation information of the reference operation area corresponding to the real-time location information is updated based on the second concentration and the real-time location information, and updated reference operation information is obtained; A third interface is generated based on the updated reference operation information; The terminal device corresponding to the reference operation area corresponding to the real-time location information is controlled to display the third interface.

8. A processing device for high-risk cargo leakage information, characterized in that, A server applied to an emergency command system, the emergency command system comprising the server, a main console device of an emergency command personnel in communication connection with the server, a terminal device of a rescue user, and an unmanned detection device, the device comprising: A first control unit is configured to control the terminal device to display a first interface in response to a first operation of the main console device, the first interface comprising target operation information and a target operation area corresponding to the target operation information, the target operation information comprising a rescue route, the target operation information being information matched from a plurality of reference operation information according to historical operation information of the rescue user, the reference operation information being determined according to an accident type in a reference operation area corresponding to the reference operation information, the accident type being determined according to a type of the high-risk transport goods and a first concentration of the high-risk transport goods in the reference operation area based on the unmanned detection device, and the reference operation area being determined according to a preset concentration difference, environmental data, physicochemical property data of the high-risk transport goods, a concentration calculation formula, and location information collected through a Beidou system; A first update unit is configured to update the rescue route according to the second concentration, the real-time location information, and the target operation area if the second concentration is greater than or equal to a first preset concentration, and obtain a first rescue route; A second update unit is configured to update the first interface based on the first rescue route, and obtain a second interface; A second control unit is configured to control the terminal device to display the second interface. The electronic device comprises:

9. An electronic device, comprising: A processor and a memory, the memory being configured to store computer program code, the computer program code comprising computer instructions, and the electronic device being configured to execute the method according to any one of claims 1 to 7 when the processor executes the computer instructions. The computer program is stored in the computer readable storage medium, and the computer program comprises program instructions, and the processor is configured to execute the method according to any one of claims 1 to 7 when the program instructions are executed.

10. A computer-readable storage medium, characterized in that, ​

Citation Information

Patent Citations

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    CN120913390A