Emergency resource management system and method
By setting RFID dual-frequency tags on emergency supplies, the real flow data and simulated training data can be managed separately, solving the problems of data isolation and multi-scenario concurrent operations in the existing system, and improving the transparency and response speed of emergency supply management.
Patent Information
- Application Number
- CN202510546742.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-28
- Publication Date
- 2025-09-19
AI Technical Summary
The existing emergency material management system has difficulty in effectively distinguishing between real material management data and teaching and training simulation data, and cannot meet the needs of concurrent operations in multiple scenarios, resulting in a significant reduction in the authenticity and effectiveness of training scenarios.
RFID dual-frequency tag technology is used to record the actual flow data of emergency materials and simulated training data respectively. RFID dual-frequency readers and writers are used to perform reading and writing operations in training scenarios or emergency use scenarios to achieve separate management of the system.
It improves the transparency and response speed of emergency material management, ensures that material management during real emergency response is not interfered with by simulated training scenarios, and provides a highly realistic operating environment.
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Figure CN120672010A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of electronic information technology, and in particular to an emergency resource management system and method. Background Art
[0002] In the field of emergency medical care, education and training are crucial for cultivating professional medical personnel and improving emergency response capabilities. As a key vehicle for education and training, the scientific and efficient management of emergency medical supplies directly impacts training effectiveness.
[0003] Currently, when teaching and training about emergency supplies, if the data generated by simulated training is mixed with data on the inventory and usage of real supplies, this not only interferes with the accuracy of the actual material management system, but also affects the targeted analysis of teaching and training data, making it impossible to provide a reliable basis for evaluating teaching effectiveness. Furthermore, in terms of multi-scenario concurrent operation, teaching and training often involve a variety of complex scenarios, such as different types of disaster relief simulations. However, existing material management systems struggle to support the isolation and concurrent operation of multi-dimensional data. That is, when multiple training scenarios are conducted simultaneously, material usage and scheduling data are easily confused, which greatly reduces the authenticity and effectiveness of the training scenarios.
[0004] Therefore, it is currently impossible to effectively distinguish between real material management data and teaching and training simulation data. Currently, most management methods based on RFID chips are single-system modes, which cannot meet the needs of data isolation and multi-scenario concurrent operations in teaching and training scenarios. Summary of the Invention
[0005] In response to the above problems, the present application provides an emergency resource management system and method. By installing an RFID unit on each emergency material, the actual flow data of the emergency material and the training data in a simulated training scenario are managed separately, which can significantly improve the transparency, response speed and resource utilization of medical material management, and provide strong support for emergency response training and actual combat.
[0006] To achieve the purpose of the present invention, this application provides the following technical solutions:
[0007] In a first aspect, the present application provides an emergency resource management system, comprising: emergency supplies, supply management tags, RFID dual-frequency readers and writers, and a back-end management platform;
[0008] Emergency supplies, used for simulation training and actual emergency use;
[0009] A material management tag includes an RFID unit provided on each of the emergency materials, the RFID unit including a first RFID tag and a second RFID tag, wherein the first RFID tag and the second RFID tag have different frequency bands; the first RFID tag is used to record the actual flow data of the emergency materials, and the second RFID tag is used to write the training data of the emergency materials in a simulated training scenario in real time;
[0010] An RFID dual-frequency reader / writer is used to read and write the material management tag in a training scenario or emergency use scenario based on the emergency material;
[0011] The back-end management platform is used to store material data based on the first RFID tag and the second RFID tag, and the material data includes the real circulation data and the training data.
[0012] In one possible embodiment, the system includes an inbound unit and an outbound unit; the real circulation data includes the material ID corresponding to each of the emergency materials, and the usage data during each simulated training or actual emergency use; in the case of actual emergency use based on the emergency materials, the outbound request for the emergency materials is initiated to the back-end management platform through the outbound unit, and after the outbound is completed, the first outbound result is written into the first RFID tag to generate the usage data for the current outbound; or, in the case of simulated training based on the emergency materials, the outbound request for the emergency materials is initiated to the back-end management platform through the outbound unit, and after the outbound is completed, the second outbound result is written into the first RFID tag to generate the usage data for the current outbound; wherein, the first outbound result includes at least an actual emergency identification, and the second outbound result includes at least a simulated training identification, and the actual emergency identification and the simulated training identification are used to further distinguish the usage data corresponding to the actual emergency scenario and the usage data corresponding to the simulated training scenario in the first RFID tag on the back-end management platform.
[0013] In one possible implementation, when writing the first outbound delivery result or the second outbound delivery result into the first RFID tag, the authority of the first operator is verified in the outbound delivery module; and if the verification passes, the first outbound delivery result or the second outbound delivery result is written into the first RFID tag; wherein, if the first operator is a system administrator or a warehouse administrator, the verification passes; if the first operator is a training administrator, the verification fails.
[0014] In one possible implementation, the training data includes training organization, operation time, and operation type; in the case of simulated training based on the emergency supplies, the RFID dual-frequency reader / writer configured at the target location batch reads and writes the rapid operations of the emergency supplies between multiple trainees in the second RFID tag; when the current simulated training is completed, the training data corresponding to the current training process in the second RFID tag is cleared, and a request for the emergency supplies to be put into storage is initiated to the back-end management platform based on the storage unit; wherein, the back-end management platform stores the training data and displays the stored content based on different permissions; the training administrator corresponding to each training process can only query the training data corresponding to the current training process.
[0015] In one possible implementation, at the beginning of each training session, the current training scenario ID and the initialization parameters corresponding to the current training scenario are written via the RFID dual-frequency reader / writer; at the end of each training session, when the training data in the second RFID tag is cleared, the authority of the second operator is verified; wherein, if the second operator is a system administrator or a training administrator, the verification passes; and if the second operator is a warehouse administrator, the verification fails.
[0016] In one possible implementation, the system further includes a second management platform, which is used to store training data in the training scenario; wherein the back-end management platform provides an API interface for access by the second management platform; and the second management platform accesses the material data of the back-end management platform through the API interface.
[0017] In a possible implementation, the back-end management platform issues an early warning on the expiration date and loss status of the emergency supplies.
[0018] In a second aspect, the present application provides an emergency resource management method, which is applied to the above-mentioned emergency resource management system, and the method includes:
[0019] Determine emergency supplies, which are used for simulation training or actual emergency use;
[0020] In the case where the application materials are used for simulation training, a request for the emergency materials to be dispatched is initiated to the back-end management platform through the dispatch unit. After the dispatch is completed, the dispatch result is written into the first RFID tag to generate the usage data for the dispatch; the first RFID tag is physically associated with the emergency materials and is used to record the actual flow data of the emergency materials;
[0021] During the training, the training data of the emergency supplies in the simulated training scenario is written in real time into the second RFID tag; the second RFID tag is physically associated with the emergency supplies and is used to write the training data of the emergency supplies in the simulated training scenario in real time; wherein the first RFID tag and the second RFID tag have different frequency bands;
[0022] After the training is completed, the training data corresponding to the current training process in the second RFID tag is cleared, and the data is stored in the storage unit to be used in the next simulation training or actual emergency.
[0023] In a possible implementation, the method further includes: until the training is completed, clearing the training data corresponding to the current training process in the second RFID tag, and storing the training data based on the storage unit for the next simulation training or actual emergency use.
[0024] In a possible implementation, the method further includes: when the emergency materials are used for actual emergency use, a request for the emergency materials to be dispatched to the back-end management platform through the dispatch unit, and after the dispatch is completed, the dispatch result is written into the first RFID tag to generate usage data for the dispatch; when the actual emergency use is completed, the corresponding warehousing information of the emergency materials is written into the warehousing unit; the warehousing information includes at least the material ID, warehousing time, warehousing personnel, inventory location and material validity period.
[0025] The emergency resource management system and method provided in the embodiment of the present application, by setting a material management tag on the emergency material that includes a first RFID tag for recording the real flow data of the emergency material and a second RFID tag for writing the training data of the emergency material in a simulated training scenario in real time, thereby performing read and write operations on the material management tag in a training scenario or an emergency use scenario based on an RFID dual-frequency reader / writer, thereby realizing system separation of emergency materials in training scenarios and emergency use scenarios. Therefore, the present application determines the real flow data during actual emergency use through dual-chip deployment at the physical level and system separation at the logical level, ensures that the management of real emergency materials is not interfered with by the simulated training scenario, and improves the response speed of emergency materials during real emergency response; at the same time, it can also provide a highly simulated operating environment for medical emergency training trainees with high requirements for compliance and process rigor. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] The accompanying drawings are used to provide a further understanding of the present application and constitute a part of the specification. Together with the embodiments of the present application, they are used to explain the present application and do not constitute a limitation of the present application.
[0027] Figure 1A schematic diagram of the structure of the emergency resource management system provided in an embodiment of the present application;
[0028] Figure 2 An optional flow chart of the emergency resource management method provided in an embodiment of the present application;
[0029] Figure 3 An optional flow chart of the emergency resource management method provided in an embodiment of the present application. DETAILED DESCRIPTION
[0030] To make the objectives, technical solutions, and advantages of this application more clear, the technical solutions of this application will be clearly and completely described below in conjunction with the accompanying drawings. Obviously, the embodiments described are only part of the embodiments of this application, not all of them. Based on the embodiments of this application, all other embodiments obtained by ordinary technicians in this field without making any creative efforts are within the scope of protection of this application.
[0031] The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the technical features indicated. Thus, features specified as "first" or "second" may explicitly or implicitly include one or more of such features; and in the description of this application, unless otherwise specified, "plurality" means two or more.
[0032] In the field of emergency medical care, training is crucial for cultivating professional medical personnel and enhancing emergency response capabilities. As a crucial vehicle for training and instruction, the scientific and efficient management of emergency medical supplies directly impacts training effectiveness. Traditional emergency medical supply management methods struggle to meet the unique demands of training and instruction. Specifically, they face several significant challenges: 1) In terms of data management, existing technologies cannot effectively distinguish between real-world supply management data and training and instruction simulation data. During training and instruction, data generated by simulations is intermingled with data on real-world supply inventory and usage. This not only distorts the accuracy of the real-world supply management system but also hinders the targeted analysis of training and instruction data, making it impossible to provide a reliable basis for evaluating teaching effectiveness. 2) In terms of concurrent operations across multiple scenarios, training and instruction often involves a variety of complex scenarios, such as different types of disaster relief simulations. However, existing supply management systems struggle to support the isolation and concurrent operation of multi-dimensional data. When multiple training scenarios are conducted simultaneously, data on supply usage and dispatch can become confused, significantly compromising the authenticity and effectiveness of the training scenarios. 3) In terms of supply tracking and traceability, the lack of systematic management makes it difficult to fully trace the flow of supplies during training and instruction. This makes it impossible for training managers to understand the usage of materials in a timely manner, unable to accurately locate problems in the material management process, and is not conducive to the reasonable allocation and replenishment of materials.
[0033] RFID chip technology is gaining increasing application in the field of material management. However, current RFID-based management methods are mostly single-system models, failing to meet the data isolation and multi-scenario concurrent operation requirements of teaching and training scenarios. In this context, there is an urgent need for an innovative management method that leverages the advantages of RFID chips to enable concurrent management of real material management data and teaching and training simulation data, thereby effectively addressing the aforementioned challenges in emergency medical material management for teaching and training.
[0034] In order to solve the above technical problems, the present invention proposes the following technical solutions and corresponding embodiments.
[0035] Example 1
[0036] like Figure 1 The figure shows a schematic diagram of the structure of the emergency resource management system of the present application. The system includes emergency supplies, supply management tags, RFID dual-frequency readers and writers, and a back-end management platform. The back-end management platform of the present application can be implemented as a computer with integrated services, or as a business instance deployed on one or more devices in a cloud node. It uses the RFID dual-frequency reader and writer to track and record the actual flow data and training data of each emergency supply.
[0037] Here, emergency supplies refer to high-value regulatory-level consumables used for emergency rescue that are stored and managed in material warehouses and are used for repeated deployment and use in simulated training scenarios and actual emergency use scenarios. For example, they include large medical equipment such as ventilators, high-end protective and auxiliary equipment such as positive pressure air respirators, mobile DR equipment, negative pressure stretchers, and chemical protective suits, as well as ultrasound diagnostic probes, minimally invasive surgical instruments, medical laser consumables, high-end monitoring equipment, etc.
[0038] The material management tag includes an RFID (Radio Frequency Identification) unit provided on each emergency material. The RFID unit includes a first RFID tag and a second RFID tag. The first RFID tag and the second RFID tag have different frequency bands. The first RFID tag is used to record the actual flow data of the emergency material, and the second RFID tag is used to write the training data of the emergency material in a simulated training scenario in real time. In an embodiment of the present application, the first RFID tag is a high-frequency (HF) tag, and the second RFID tag is an ultra-high-frequency (UHF) tag.
[0039] An RFID dual-frequency reader / writer performs read and write operations on the material management tags in training scenarios or emergency use scenarios based on the emergency materials. In an embodiment of the present application, the RFID dual-frequency reader / writer has a dual-frequency antenna and supports reading and writing both HF and UHF tags. It is used to sense the high-frequency or ultra-high-frequency signals emitted by the RFID tags and read the information carried by the RFID unit after sensing the high-frequency or ultra-high-frequency signals.
[0040] The back-end management platform of the embodiment of the present application is used to store material data based on the first RFID tag and the second RFID tag, and the material data includes the real flow data and the training data.
[0041] The following describes the various components and specific workflows of the emergency resource management system of this application in conjunction with specific embodiments:
[0042] Each of the emergency supplies is stored in a warehouse when idle, and is centrally managed and regularly maintained by the warehouse manager. In an embodiment of the present application, an RFID dual-frequency reader is deployed in the warehouse's in-and-out module to write corresponding outbound or inbound information to the RFID unit when emergency supplies are shipped out or in. For example, the outbound information includes the time of shipment and the person who shipped the supplies, and the inbound information includes the time of shipment, the person who shipped the supplies, the inventory location, and the expiration date of the supplies.
[0043] In an embodiment of the present application, an inbound unit and an outbound unit are set on the back-end management platform, and the inbound unit and the outbound unit are communicatively connected to the user terminal. The user terminal refers to a client located on the user side. In terms of implementation, it can be implemented as an application installed on the terminal device on the user side, or as a web page with interactive functions. In an embodiment of the present application, when a user needs to dispatch emergency supplies A, the user terminal is communicated with the outbound unit of the back-end management platform, and an outbound request for emergency supplies A is sent to the back-end management platform. After monitoring the outbound request, the back-end management platform confirms the target emergency supplies A and the current status of emergency supplies A as waiting to be dispatched, and then feeds back the outbound information corresponding to emergency supplies A to the user terminal. As a feasible implementation method, emergency supplies A can be a category of emergency supplies. After the back-end management platform monitors the outbound request for one or more supplies in this category of emergency supplies A, the status of one or more emergency supplies A is confirmed in the warehouse. In the case of multiple emergency supplies A, one or more supplies are confirmed in the order of priority of the multiple supplies to arrange for dispatch.
[0044] Specifically, during the warehousing process, the warehouse manager uses the RFID dual-frequency reader / writer of the entry and exit module to write the material ID, entry time, entry personnel, inventory location and material expiration date into the first RFID tag. The back-end management platform marks the material status parameter as "storage in the warehouse" and updates the inventory quantity. During the outbound process, the warehouse manager uses the RFID dual-frequency reader / writer of the entry and exit module to read the first RFID tag and write the material ID, outbound time (usage time), outbound personnel and usage quantity. At the same time, the back-end management platform is fed back to deduct the inventory and update the material status parameter to "outbound emergency use". It should be noted that during the circulation process, the first RFID tag contains the full life cycle information corresponding to the emergency material, such as production batch, maintenance log, expiration date, etc.
[0045] In an embodiment of the present application, the real flow data includes the material ID corresponding to the emergency materials, and the usage data during each simulation training or actual emergency use; the training data includes the training organization, operation time, and operation type during the simulation training. In the case of actual emergency use based on the emergency materials, a request for the emergency materials to be dispatched to the back-end management platform is initiated through the dispatch unit, and the first dispatch result is written into the first RFID tag after the dispatch is completed, and the usage data for the current dispatch is generated; in the case of simulated training based on the emergency materials, a request for the emergency materials to be dispatched to the back-end management platform is initiated through the dispatch unit, and the second dispatch result is written into the first RFID tag after the dispatch is completed, and the usage data for the current dispatch is generated. Here, when the dispatched emergency materials are used for actual emergency use or simulation training, the dispatch result is written into the first RFID tag after the dispatch is completed, and a unified record is made in the first RFID tag, that is, the real flow data corresponding to the emergency materials is recorded in the first RFID tag. Here, usage data can be understood as usage records (warehouse entry information, warehouse exit information) for each simulation training or actual emergency use, and the warehouse exit result can be a material status parameter; for example, the material status parameter can include "outbound emergency use", or "storage in the warehouse", or "maintenance management".
[0046] For example, when the purpose of the first shipment of emergency supplies 1 is for emergency use, the usage data corresponding to the first shipment is written into the first RFID tag, and the storage information is written when the supplies are returned to the warehouse; when the purpose of the second shipment of emergency supplies 1 is for simulation training, the usage data corresponding to the second shipment is also written into the first RFID tag, and the training parameters corresponding to the second shipment are written into the second RFID tag. Thus, the historical usage data of the emergency supplies 1 are accumulated and counted in the first RFID tag, and the training data of the emergency supplies 1 during the simulation training is separately stored in the second RFID tag. The usage data (historical usage data) here refers to the use organization (training organization), operation time, operation type, and number of uses of the emergency supplies after each shipment, and the training data refers to the parameters during the training period (including the equipment operation parameters of large medical equipment).
[0047] As a feasible implementation, a backend management platform is connected to the control system of each emergency supply. During each simulated training session or emergency use, the operational data of the emergency supplies after activation is synchronously transmitted to the backend management platform, which then centrally manages the operational data of the emergency supplies. The backend management platform includes at least a first storage unit and a second storage unit. Storage unit one is used to store the actual flow data corresponding to the first RFID tag in real time, while storage unit two is used to record the training data corresponding to the second RFID tag in real time.
[0048] At the same time, the back-end management platform comprehensively manages and issues early warnings for the expiration dates and depletion status of emergency supplies. For example, early warnings may be issued three days before the expiration date of emergency supplies, or during scheduled maintenance periods for large medical equipment.
[0049] In an embodiment of the present application, for emergency supplies with confidentiality characteristics, the transmission of usage data generated is encrypted and authenticated.
[0050] In an embodiment of the present application, one or more RFID dual-frequency readers are deployed in the access control modules and indoor monitoring modules (target locations) of different training rooms / departments / training cabins; at the beginning of each training, the current training scene ID and the initialization parameters corresponding to the current training scene are written by the RFID dual-frequency reader; in the case of simulated training based on emergency supplies, the RFID dual-frequency reader reads and writes the rapid operations of emergency supplies between multiple trainees in batches in the second RFID tag, and stores them in the back-end management platform at the same time; and when the current simulated training is completed, the training data corresponding to the current training process in the second RFID tag is cleared, and then a request for warehousing of emergency supplies is initiated to the back-end management platform based on the warehousing unit. For example, when the current training scenario ID of the training organization is the simulated "earthquake rescue" scenario 1, the various initialization parameters of the simulated "earthquake rescue" scenario 1 are written into the second RFID chip through the RFID dual-frequency reader / writer deployed in the training room. When student A starts the simulated operation of emergency material a, the identity information of student A is written, and the simulated operation data of emergency material a is written in real time during the simulated operation; then, when student B starts the simulated operation of emergency material a, the identity information of student B is written, and the simulated operation data of emergency material a is written in real time during the simulated operation, thereby obtaining and storing the training data during the current training operation; finally, at the end of the current simulated training, the training data during the current training operation is cleared and reset by the training administrator. It should be noted that at the end of each current simulated training, the training data corresponding to the current simulated training has been stored in storage unit 2.
[0051] Here, the training data in the second RFID chip is cleared after the training is completed, thereby achieving periodic resetting of the second RFID chip; currently, a large amount of real flow data and training data are tracked and stored in the data storage content corresponding to emergency materials, which occupies a large storage space; therefore, compared with the existing emergency material management, the RFID unit of this application can simultaneously carry real management data and dynamic training data on the same material, and the two need to be strictly isolated and operated independently.
[0052] In order to avoid excessive human intervention, in the embodiment of the present application, the authority of the system administrator, warehouse administrator and training administrator is restricted on the back-end management platform. Specifically, when writing the first outbound result or the second outbound result to the first RFID tag, the authority of the first operator is verified in the outbound module; and if the verification passes, the first outbound result or the second outbound result is written to the first RFID tag; wherein, if the first operator is a system administrator or a warehouse administrator, the verification passes; if the first operator is a training administrator, the verification fails. At the end of each training, when the training data in the second RFID tag is cleared, the authority of the second operator is verified; wherein, if the second operator is a system administrator or a training administrator, the verification passes; if the second operator is a warehouse administrator, the verification fails.
[0053] In an embodiment of the present application, the back-end management platform is connected to the unit's asset system to record the actual data such as the actual entry and exit, consumption, expiration date, disinfection status, etc. of emergency materials. The data cannot be tampered with by the training system to manage the actual inventory, expiration date warning, cost accounting, traceability tracking of materials, and synchronize the data to the unit's operation database in real time. In an embodiment of the present application, before the materials are put into storage, a unique material ID is assigned to each material and used as the primary identifier. Specifically, a mapping table of the ID of the first RFID tag and the ID of the second RFID tag corresponding to each material ID is established in the database of the emergency resource management system of the present application. Correspondingly, for each material, the material ID is automatically associated with the data in the first RFID tag and the second RFID tag (such as the "student operation record" and "material status parameters" are displayed simultaneously in the training report) to ensure the management compliance and logistics traceability of the materials during the circulation period. Here, in order to avoid the chip damage causing the association between the material ID and the RFID unit to fail, the ID of the first RFID tag and the ID of the second RFID tag both use the material ID as a common field to read and write the corresponding data; at the same time, a unified data field specification is defined to ensure that the data in the first RFID tag and the second RFID tag are compatible at the field level.
[0054] In the embodiment of the present application, the first emergency supplies (emergency surgical instrument kit) are taken as an example; chip A (real management) is embedded in the instrument kit to record the number of disinfection times, the department of use, and the maintenance record; chip B (training simulation) is pasted on the outer packaging of the instrument kit to record the virtual path of "being deployed to the simulated disaster area" in the drill. During actual emergency use, the instrument kit enters the disinfection supply room, the real reader reads chip A, updates the disinfection status to "sterilized", and the real system deducts inventory (marked as "in use in the operating room"). During the simulation training process, the training organization calls the instrument kit to the trauma simulation area in the simulation drill, the training reader reads chip B, and records "drill ID-007 + simulation usage time + trainee operation record" on the back-end management platform. The chip A data remains unchanged; and after the training is completed, the training administrator enters the training end instruction to reset the chip B data, and the instrument kit returns to the "idle inventory" state and can be reused in real scenarios or the next training scenario. It should be noted that chip B supports repeated erasing of simulation data.
[0055] In an embodiment of the present application, the back-end management platform includes a material input module, which includes a material code adding unit, a material code editing unit, and a material code deleting unit; the above-mentioned material code adding unit is connected to the storage unit 1 of the back-end management platform, and is used to add the material code (material ID) to the storage unit 1 in the form of an independent record, and to set the subordinate relationship between the material code and the code rule at the bottom of the tree-like subordinate relationship; the material code editing unit is connected to the storage unit 1 to realize the editing of the record corresponding to the material ID in the platform based on preset conditions, and the material code deleting module is connected to the storage unit 1 to realize the deletion of the item corresponding to the material ID in the platform. Thus, by adding, editing, and deleting the material code (emergency material), the module management of emergency materials can be carried out independently of the asset management system.
[0056] In an embodiment of the present application, a second management platform is provided outside the back-end management platform, and the second management platform is specifically used to store training data in the training scenario; wherein, the back-end management platform provides an API interface for access by the second management platform; the second management platform accesses the material data of the back-end management platform through the API interface.
[0057] The emergency resource management system of the present application sets a material management tag on the emergency material, which includes a first RFID tag for recording the real flow data of the emergency material and a second RFID tag for writing the training data of the emergency material in a simulated training scenario in real time. The material management tag is read and written based on the RFID dual-frequency reader in the training scenario or the emergency use scenario, thereby realizing the system separation of emergency materials in the training scenario and the emergency use scenario. The present application determines the real flow data during the actual emergency use through the dual-tag deployment at the physical level and the system separation at the logical level, ensures that the management of real emergency materials is not interfered with by the simulated training scenario, and improves the response speed of emergency materials during the real emergency response; at the same time, it can also provide a highly simulated operating environment for medical emergency training trainees with high requirements for compliance and process rigor.
[0058] Example 2
[0059] Based on the above embodiments, the present application provides an emergency resource management method, which is applied to the above emergency resource management system. Figure 2 An optional flow chart of the emergency resource management method provided in this embodiment is as follows: Figure 2 As shown, the method of this embodiment includes the following steps S201 to S204:
[0060] Step S201: Determine emergency supplies for simulation training or actual emergency use.
[0061] In an embodiment of the present application, the same emergency material warehouse can be used in two scenarios (simulated training scenario and actual emergency application scenario) respectively. Therefore, there is no need to make separate material partitions in the asset system (management library) for the use of emergency materials in the simulated training scenario.
[0062] Step S202: When the emergency supplies are used for simulation training, a request for the emergency supplies to be dispatched is initiated to the back-end management platform through the dispatch unit. After the dispatch is completed, the dispatch result is written into the first RFID tag to generate usage data for the dispatch; the first RFID tag is physically associated with the emergency supplies and is used to record the actual flow data of the emergency supplies.
[0063] In the embodiment of the present application, usage data refers to the usage records (warehouse entry information, warehouse exit information) for each simulated training or actual emergency use, the warehouse exit results and the current material status parameters of the emergency materials.
[0064] Step S203: During the training, the training data of the emergency supplies in the simulated training scenario is written into the second RFID tag in real time; the second RFID tag is physically associated with the emergency supplies and is used to write the training data of the emergency supplies in the simulated training scenario in real time; wherein the frequency bands of the first RFID tag and the second RFID tag are different.
[0065] In the embodiment of the present application, the training data refers to the training organization, operation time, and operation type during the simulation training.
[0066] Step S204: until the training is completed, the equipment is put into storage based on the storage unit, waiting for the next simulation training or actual emergency use.
[0067] After the training of the emergency resource management method of the embodiment of the present application is completed, refer to Figure 3 As shown, the current training data can be reset in the original step S204.
[0068] The emergency resource management method of the embodiment of the present application, in a training scenario or an emergency use scenario, is based on different chips of the same emergency material, and uses an RFID dual-frequency reader to read and write the material management tag, thereby realizing interference-free management of emergency materials in training scenarios and emergency use scenarios.
[0069] The flowcharts and block diagrams in the accompanying drawings illustrate the possible implementation architecture, functions and operations of the systems, methods and computer program products according to various embodiments of the present invention. In this regard, each box in the flowchart or block diagram can represent a module, program segment, or a part of code, and the above-mentioned module, program segment, or a part of code contains one or more executable instructions for implementing the specified logical function. It should also be noted that in some alternative implementations, the functions marked in the box can also occur in an order different from that marked in the accompanying drawings. For example, two boxes represented in succession can actually be executed substantially in parallel, and they can sometimes be executed in the opposite order, depending on the functions involved. It should also be noted that each box in the block diagram or flowchart, and the combination of boxes in the block diagram or flowchart, can be implemented with a dedicated hardware-based system that performs the specified function or operation, or can be implemented with a combination of dedicated hardware and computer instructions.
[0070] It should be noted that, although several modules or units of the device for action execution are mentioned in the above detailed description, this division is not mandatory. In fact, according to an embodiment of the present invention, the features and functions of two or more modules or units described above can be concretized in one module or unit. Conversely, the features and functions of one module or unit described above can be further divided into multiple modules or units to be concretized.
[0071] Through the description of the above embodiments, it is easy for those skilled in the art to understand that the example embodiments described herein can be implemented by software or by combining software with necessary hardware. Therefore, the technical solution according to the embodiments of the present invention can be embodied in the form of a software product, which can be stored in a non-volatile storage medium (which can be a CD-ROM, a USB flash drive, a mobile hard disk, etc.) or on a network, and includes a number of instructions to enable a computing device (which can be a personal computer, a server, a touch terminal, or a network device, etc.) to execute the method according to the embodiments of the present invention.
[0072] In the several embodiments provided in this application, it should be understood that the disclosed systems, modules and methods can be implemented in other ways. For example, the module embodiments described above are merely illustrative. For example, the division of units is merely a logical function division. In actual implementation, there may be other division methods, such as multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, indirect coupling or communication connection of modules or units, which can be electrical, mechanical or other forms.
[0073] The above embodiments are intended only to illustrate the technical solutions of the present application and are not intended to limit them. The present application is not limited to the precise structures described above and illustrated in the accompanying drawings, and it cannot be assumed that the specific implementation of the present application is limited to these descriptions. For those skilled in the art of the present application, any changes and modifications made without departing from the concept of the present application should be deemed to fall within the scope of protection of the present application.
Claims
1. An emergency resource management system, characterized in that: include: Emergency supplies, used for simulation training and actual emergency use; A material management tag includes an RFID unit provided on each of the emergency materials, the RFID unit including a first RFID tag and a second RFID tag, wherein the first RFID tag and the second RFID tag have different frequency bands; the first RFID tag is used to record the actual flow data of the emergency materials, and the second RFID tag is used to write the training data of the emergency materials in a simulated training scenario in real time; An RFID dual-frequency reader / writer is used to read and write the material management tag in a training scenario or emergency use scenario based on the emergency material; The back-end management platform is used to store material data based on the first RFID tag and the second RFID tag, where the material data includes the real circulation data and the training data.
2. The emergency resource management system according to claim 1, characterized in that: The system includes an inbound unit and an outbound unit; the real flow data includes the material ID corresponding to each emergency material and the usage data during each simulation training or actual emergency use; In the case of actual emergency use of the emergency supplies, a request for the emergency supplies to be dispatched from the warehouse is initiated to the back-end management platform through the dispatch unit. After the dispatch is completed, the first dispatch result is written into the first RFID tag to generate the usage data for the dispatch; Alternatively, in the case of simulated training based on the emergency supplies, a request for the emergency supplies to be dispatched is initiated to the back-end management platform through the dispatch unit, and after the dispatch is completed, a second dispatch result is written into the first RFID tag to generate the usage data for the dispatch; The first outbound delivery result includes at least an actual emergency identification, and the second outbound delivery result includes at least a simulation training identification.
3. The emergency resource management system according to claim 2, characterized in that: When writing the first outbound delivery result or the second outbound delivery result into the first RFID tag, verifying the authority of the first operator in the outbound delivery module; and if the verification passes, writing the first outbound delivery result or the second outbound delivery result into the first RFID tag; Wherein, when the first operator is a system administrator or a warehouse administrator, the verification passes; when the first operator is a training administrator, the verification fails.
4. The emergency resource management system according to claim 2, characterized in that: The training data includes training organization, operation time, and operation type during the simulation training; In the case of simulated training based on the emergency supplies, the RFID dual-frequency reader / writer batch reads and writes the rapid operations of the emergency supplies between multiple trainees in the second RFID tag; when the current simulated training ends, the training data corresponding to the current training process in the second RFID tag is cleared, and a storage request for the emergency supplies is initiated to the back-end management platform based on the storage unit; The backend management platform stores the training data and displays the stored content based on different permissions.
5. The emergency resource management system according to claim 4, characterized in that: At the beginning of each training session, the current training scenario ID and the initialization parameters corresponding to the current training scenario are written through the RFID dual-frequency reader; At the end of each training session, when the training data in the second RFID tag is cleared, the authority of the second operator is verified; if the second operator is a system administrator or a training administrator, the verification passes; if the second operator is a warehouse administrator, the verification fails.
6. The emergency resource management system according to any one of claims 1 to 5, characterized in that: The system further includes a second management platform, which is used to store training data in the training scenario; wherein the backend management platform provides an API interface for access by the second management platform; The second management platform accesses the material data of the back-end management platform through the API interface.
7. The emergency resource management system according to claim 1, characterized in that: The back-end management platform issues early warnings on the expiration date and loss status of the emergency supplies.
8. An emergency resource management method, applied to the emergency resource management system according to any one of claims 1 to 7, characterized in that: include: Determine emergency supplies, which are used for simulation training or actual emergency use; In the case where the emergency supplies are used for simulation training, a request for the emergency supplies to be dispatched is initiated to the back-end management platform through the dispatch unit. After the dispatch is completed, the dispatch result is written into the first RFID tag to generate usage data for the dispatch; the first RFID tag is physically associated with the emergency supplies to record the actual flow data of the emergency supplies; During the training, the training data of the emergency supplies in the simulated training scenario is written in real time into the second RFID tag; the second RFID tag is physically associated with the emergency supplies and is used to write the training data of the emergency supplies in the simulated training scenario in real time; wherein the first RFID tag and the second RFID tag have different frequency bands; After the training is completed, the equipment will be put into storage based on the storage unit, waiting for the next simulation training or actual emergency use.
9. The emergency resource management method according to claim 8, characterized in that: The method further comprises: After the training is completed, the training data corresponding to the current training process in the second RFID tag is cleared, and the data is stored in the storage unit to be used in the next simulation training or actual emergency.
10. The emergency resource management method according to any one of claims 8 to 9, characterized in that: The method further comprises: When the emergency supplies are actually used for emergency purposes, a request for the emergency supplies to be dispatched to the back-end management platform is initiated through the dispatch unit. After the dispatch is completed, the dispatch result is written into the first RFID tag to generate usage data for the dispatch; When the actual emergency use is completed, the warehousing information corresponding to the emergency supplies is written into the warehousing unit; the warehousing information at least includes the material ID, warehousing time, warehousing personnel, inventory location and material expiration date.