Rapid positioning method and system for snake bite treatment medical institution
Through intelligent algorithms, snake species are identified and first aid information is provided in combination with medical databases, medical institution inventory is updated in real time, and treatment institutions are dynamically screened, which solves the problems of uneven treatment resources and lagging information, improves the efficiency and success rate of snake bite treatment, and reduces the mortality and disability rate.
Patent Information
- Application Number
- CN202510425325.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-07
- Publication Date
- 2025-07-08
AI Technical Summary
The existing snake bite treatment system has problems such as uneven allocation of treatment resources, untimely update of information, lack of targeted hospital screening functions and insufficient public first aid knowledge, resulting in low treatment efficiency, high mortality and disability rates.
Snake species are identified through intelligent algorithm tools, targeted first aid information is provided in combination with medical databases, and anti-venom serum inventory of medical institutions is updated in real time, dynamically screening and sorting the most suitable treatment institutions, providing navigation services, and allowing users to upload data and educational content to improve the public's ability to rescue and mutual rescue.
It has achieved rapid and accurate positioning of treatment points, updated treatment capacity information in real time, intelligently screened the most suitable treatment institutions, improved the public's self-rescue and mutual rescue capabilities, and significantly reduced the mortality and disability rate of snake bites.
Smart Images

Figure CN120280105A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of medical first aid, and particularly to a method and system for quickly locating a medical institution for treating snake bites. Background Art
[0002] Snake bites, especially viper bites, are a serious acute trauma. Their clinical manifestations vary due to differences in snake species, toxin types and contents, and may show neurotoxicity, hemotoxicity or cytotoxicity. In severe cases, they can even endanger life. Therefore, quickly and accurately locating the treatment point is crucial for early first aid and reducing the fatality and disability rates.
[0003] The existing treatment system still has many deficiencies:
[0004] Firstly, the treatment capabilities vary unevenly among regions. Due to large differences in the medical treatment levels in different regions, the distribution of first aid resources for snake bites (such as antivenom serum and professional medical staff) is uneven, resulting in some regions being unable to provide effective treatment in a timely manner. This imbalance directly affects the timeliness and effectiveness of patient treatment.
[0005] Secondly, the information is not updated in a timely manner. The data such as the location information, contact information and treatment capabilities of hospitals in the current system may change due to hospital adjustments or resource changes. If the system fails to achieve real-time update, it is easy to guide patients to institutions that do not have the corresponding treatment conditions, thus delaying the best treatment opportunity. This problem seriously affects the reliability and practicality of the treatment system.
[0006] Moreover, there is a lack of a targeted hospital screening function. The existing hospital search or navigation applications are mainly based on general medical information and lack special information for the treatment needs of snake bites, such as whether the hospital has a reserve of antivenom serum, whether it has relevant first aid experience and equipment, etc. The lack of such information makes it difficult for patients or first aid personnel to quickly identify the most suitable treatment institution, thus affecting the treatment efficiency and effectiveness.
[0007] Finally, the popularization of public first aid knowledge is insufficient. In addition to the deficiencies in hardware facilities and information systems, the public's mastery of first aid knowledge for snake bites, correct self-help and mutual rescue skills is also relatively limited. This to a certain extent weakens the overall response speed of the treatment chain and increases the treatment difficulty and risk. The lack of an effective public education and information dissemination mechanism greatly reduces the prevention and preliminary treatment effects of snake bites.
[0008] In view of the above problems, the existing technology urgently needs to be improved. Summary of the Invention
[0009] In order to solve at least one of the problems existing in the prior art described above, the first aspect of the present invention provides a method for quickly locating a snake bite treatment medical institution, which comprises the following steps:
[0010] Step S1: obtaining the user's real-time location information and providing emergency information through the system applet; wherein, the medical institution data in the self-built snakebite database within a preset range is retrieved through the map service interface, and the emergency information is provided according to the snakebite information input by the user for self-help first; the snakebite database stores various snakebite event data, treatment methods and drug inventory information of various medical institutions updated in real time through the supply chain management system interface of each medical institution;
[0011] Step S2: screening medical institutions that have anti-snake venom serum; wherein the real-time inventory value of each medical institution is dynamically calculated according to the initial inventory, purchase volume and consumption volume of the anti-snake venom serum;
[0012] Step S3: sorting the screened medical institutions by distance; wherein the path distance of each medical institution is calculated according to the user's location, and a recommended list of medical institutions is output from near to far;
[0013] Step S4: interactive navigation; wherein the user selects a target medical institution in the recommendation list and navigates to the target medical institution according to path planning.
[0014] In the method for quickly locating a medical institution for snake bite treatment as described above, optionally, in step S1, an intelligent algorithm tool is used to assist the user or first aid personnel in preliminarily assessing the injury, and the intelligent algorithm tool is combined with a symptom-snake species mapping table of a medical database: based on the snake bite photos or feature descriptions uploaded by the user, the tool quickly helps the user identify the snake species that caused the injury, thereby providing targeted first aid information and providing a reference diagnostic basis for subsequent treatment; wherein the first aid information includes at least one of the following: wound treatment methods, emergency matters, and recommended anti-snake venom serum types.
[0015] In the method for quickly locating a snake bite treatment medical institution as described above, optionally, the emergency information is associated with the medical institution, and the step S2 specifically includes the following steps:
[0016] Step S2.1: Checking the initial inventory a of antivenom serum of each medical institution in the drug inventory in the snakebite database;
[0017] Step S2.2: Query the daily additional purchase volume b of antivenom serum of each medical institution;
[0018] Step S2.3: Query the consumption of antivenom serum c of each medical institution;
[0019] Step S2.4: Determine whether each medical institution has antivenom in stock:
[0020] When the initial inventory a + incoming quantity b - consumption quantity c > 0, it is determined that the medical institution has antivenom in stock;
[0021] Otherwise, it is determined that the medical institution does not have antivenom in stock, and medical institutions without antivenom in stock will not be displayed in the subsequent recommended list.
[0022] In the rapid positioning method of snakebite treatment medical institutions as described above, optionally, in the step S3, the medical institution recommended list synchronously displays the number of kilometers and the map location of each medical institution containing antivenom from the user's location for the user to select by themselves.
[0023] In the rapid positioning method of snakebite treatment medical institutions as described above, optionally, the recommended list generated in the step S3 further generates a comprehensively recommended list with dynamic sorting according to the hospital treatment capacity; the hospital treatment capacity includes at least one of the following: antivenom stock, professional medical staff qualification level.
[0024] In the rapid positioning method of snakebite treatment medical institutions as described above, optionally, when the user is in an emergency situation of snakebite and / or the network signal is interrupted, by operating the "one-key help" button once, at least one of the following linkage responses is triggered:
[0025] Transmit information through Beidou short message communication;
[0026] Automatically send the user's location and snakebite situation to the first medical institution and emergency contacts in the recommended list;
[0027] Start one-key taxi-hailing navigation to the first medical institution in the recommended list.
[0028] In the rapid positioning method of snakebite treatment medical institutions as described above, optionally, the system allows the user to upload their own snakebite event data and treatment experience and regularly updates the popular science education content; provides resource scheduling information for each medical institution in snakebite high-incidence seasons or regions.
[0029] To achieve the above object, the second aspect of the present invention provides a rapid positioning system for snakebite treatment medical institutions, wherein the rapid positioning method of snakebite treatment medical institutions described in any one of the foregoing first aspects is used, including:
[0030] Real-time location acquisition and first-aid module; wherein, medical institution data in a self-built snakebite database within a preset range is retrieved through a map service interface, and first-aid information is provided based on the snakebite information input by the user for self-help first; various snakebite event data, treatment methods, and drug inventory information of each medical institution updated in real time through the supply chain management system interface of each medical institution are stored in the snakebite database;
[0031] Medical institution screening module; wherein, the real-time inventory value of each medical institution is dynamically calculated based on the initial inventory, incoming quantity, and consumption quantity of the antivenom serum;
[0032] Sorting and recommendation module; wherein, the path distance of each medical institution is calculated based on the user's location, and a medical institution recommendation list is output from near to far;
[0033] Interactive navigation module; wherein, the user selects a target medical institution in the recommendation list and is navigated to the target medical institution according to path planning.
[0034] To achieve the above object, a third aspect of the present invention provides a computer device, including a memory, a processor, and a computer program stored on the memory and executable on the processor. When the processor runs the program, it implements the rapid positioning method of snakebite treatment medical institutions as described in any one of the foregoing first aspects.
[0035] To achieve the above object, a fourth aspect of the present invention provides a computer-readable storage medium, wherein the computer-readable storage medium stores computer-executable instructions or a computer program. When the computer-executable instructions or the computer program are processed and executed, the rapid positioning method of snakebite treatment medical institutions as described in any one of the foregoing first aspect embodiments is implemented.
[0036] The rapid positioning method and system for snakebite treatment medical institutions provided by the present invention solve the problems of uneven distribution of treatment resources, untimely information update, lack of targeted hospital screening function, etc. in the prior art, and have the advantages of quickly and accurately positioning the treatment point, real-time updating the treatment capacity information of medical institutions, intelligently screening the most suitable treatment institutions, and improving the public's self-help and mutual-aid capabilities. The method and system can real-time update the treatment capacity information of medical institutions, including key data such as antivenom serum inventory and professional medical staff allocation. At the same time, it has an intelligent screening function, recommends the most suitable treatment institution according to the specific situation and location of the patient. In addition, it should also be able to provide public education including snakebite prevention and first-aid knowledge to improve the public's self-help and mutual-aid capabilities.
[0037] In summary, the present invention can achieve rapid, accurate, and efficient emergency treatment, and minimize the fatality rate and disability rate of snakebites.
[0038] The following will further illustrate the concept, specific structure and technical effects of the present invention in conjunction with the accompanying drawings, so as to fully understand the purpose, features and effects of the present invention. Description of the Drawings
[0039] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the accompanying drawings required for use in the embodiments or the description of the prior art. Obviously, the accompanying drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other accompanying drawings can be obtained based on these drawings without creative efforts.
[0040] Figure 1 is a schematic flowchart of an embodiment of a method for quickly locating a snake bite treatment medical institution of the present invention;
[0041] Figure 2 is Figure 1 a detailed flowchart of the method for quickly locating a snake bite treatment medical institution in
[0042] Figure 3 is a computer architecture diagram of a quick location system for a snake bite treatment medical institution of the present invention. Detailed Embodiments
[0043] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts fall within the scope of protection of the present invention.
[0044] Terms such as "including" and "comprising" indicate that in addition to the components directly and clearly stated in the specification and claims, the technical solutions of the present invention do not exclude the situation of having other components not directly or clearly stated.
[0045] As Figure 1 and Figure 2 shown, the method for quickly locating a snake bite treatment medical institution of the present invention may include the following steps:
[0046] Step S1: Obtain the real-time location information of the user through the system applet and provide first aid information.
[0047] In step S1, medical institution data in the self-built snakebite database within a preset range is retrieved through the map service interface, and first-aid information is provided based on the snakebite information input by the user for self-help. The snakebite database stores various snakebite event data, treatment methods, and drug inventory information of each medical institution that are updated in real time through the supply chain management system interface of each medical institution.
[0048] Optionally, the preset range can be set to 30 km from the user's real-time location. In other alternative embodiments, the preset range can be adjusted according to the actual situation.
[0049] In this embodiment, an intelligent algorithm tool is used to assist the user or the first-aid personnel in preliminarily evaluating the injury condition. The intelligent algorithm tool is combined with the symptom-snake species mapping table in the medical database: based on the snakebite photo or feature description uploaded by the user, it quickly helps the user identify the snake species causing the injury, so as to provide targeted first-aid information and a reference diagnostic basis for subsequent treatment; among them, the first-aid information can include wound treatment methods, emergency matters, recommended types of antivenom serum, etc.
[0050] In an alternative embodiment, a deep learning model, such as a convolutional neural network (CNN), can be used in this step to analyze the snakebite photo and identify the snake species characteristics. Another way is to use natural language processing (NLP) technology to analyze the feature description input by the user and extract key information from it. The symptom-snake species mapping table in the medical database can be stored in structured data, such as Figure 3 the relational database MySQL shown, for quick retrieval and matching. The combination of the intelligent algorithm tool and the medical database can be achieved through the API interface. When the user uploads a photo or enters a description, the intelligent algorithm first performs feature extraction and analysis, and then compares the results with the symptom-snake species mapping table in the database. This combination not only improves the accuracy of identification, but also updates the database according to the latest medical research trends to maintain the timeliness of information.
[0051] The generation of targeted first-aid information can be based on a rule engine and decision tree algorithm. The system selects the most suitable treatment method from the preset first-aid plan library according to the identified snake species, combined with the specific situation of the patient (such as age, weight, allergy history, etc.). For example, for some neurotoxic snake species, the system will give priority to recommending measures to keep the airway unobstructed; while for hemolytic toxins, it will emphasize the importance of fluid replacement and monitoring of renal function.
[0052] In practical applications, the technical solution of this application can also be integrated into a mobile application. When a user encounters a snake bite, they can take a photo of the wound or describe the symptoms through the application. The system will immediately initiate an intelligent analysis process and give a preliminary snake species identification result and corresponding first aid advice within a few seconds. For example, if the system identifies that it may be a cobra bite, it will immediately prompt the user to stay calm, avoid strenuous exercise, and recommend the pressure-immobilization bandage method. At the same time, the system will recommend the most suitable type of antivenom serum, such as anti-cobra venom serum, and remind the user to go to a medical institution equipped with this type of serum as soon as possible.
[0053] In addition, the technical solution of this application can also be docked with the information system of medical institutions. After the system completes the preliminary assessment, the results can be directly transmitted to the nearest hospital with corresponding treatment capabilities, enabling medical staff to make preparations in advance, including preparing the corresponding antivenom serum and other necessary medical equipment. This pre-transmission of information can greatly shorten the treatment time after the patient arrives at the hospital and improve the treatment success rate.
[0054] Compared with the prior art, the technical solution of this application has significant advantages. Traditional first aid methods for snake bites usually rely on the subjective descriptions of witnesses or patients. This method is easily affected by panic and lack of professional knowledge, resulting in incorrect snake species identification and inappropriate first aid measures. However, this application combines intelligent algorithms and medical databases to objectively and quickly analyze the characteristics of snake bites, greatly improving the accuracy of snake species identification. At the same time, the targeted first aid information provided by the system is more comprehensive and accurate, including not only immediate treatment suggestions but also recommendations for suitable antivenom serum, which is of great significance for reducing the fatality and disability rates of snake bites.
[0055] Step S2: Screen medical institutions containing antivenom serum.
[0056] In step S2, the real-time inventory values of each medical institution are dynamically calculated based on the initial inventory, incoming quantity, and consumption quantity of the antivenom serum.
[0057] In this embodiment, associating the first aid information with medical institutions can be achieved by establishing a database mapping relationship or through a real-time data exchange interface. For example, a central data processing system can be designed, which establishes a secure data connection with the information systems of each medical institution to synchronize the first aid information and inventory data regularly or in real time. For example, the self-built snake bite database can be docked with the supply chain management systems of each medical institution through RESTful API, and the data is updated every 15 minutes.
[0058] In an alternative embodiment, when the system of this application associates the user's first aid information with medical institutions, step S2 can specifically include the following steps:
[0059] Step S2.1: Check the initial inventory quantity a of antivenom serum in each medical institution in the snakebite database.
[0060] In this step, the method of regular query or trigger query can be adopted. The regular query can be set to automatically update at 0:00 every morning, while the trigger query can be executed immediately when the user initiates a treatment request. In addition, the initial inventory quantity a can be subdivided into different types of antivenom serum to deal with different types of snake venom.
[0061] Step S2.2: Query the incoming quantity b of antivenom serum newly added in each medical institution on the current day.
[0062] This step can be completed by docking with the supply chain management system of the medical institution and setting up an automatic push mechanism. When the medical institution receives new antivenom serum, the system automatically updates the incoming quantity information. Another way is to set up a manual entry interface for the medical institution staff to enter the incoming information in a timely manner.
[0063] Step S2.3: Query the consumption quantity c of antivenom serum in each medical institution.
[0064] Whenever antivenom serum is used for treatment, the system associated with the medical institution automatically records the usage quantity and updates the consumption data. To improve the accuracy, a double verification mechanism can be set up, and the medical staff manually confirm the consumption quantity after use.
[0065] Step S2.4: Determine whether each medical institution has antivenom serum in stock:
[0066] When the initial inventory quantity a + incoming quantity b - consumption quantity c > 0, it is determined that the medical institution has antivenom serum in stock;
[0067] Conversely, it is determined that the medical institution does not have antivenom serum in stock, and the medical institutions without antivenom serum in stock will not be displayed in the subsequent recommendation list.
[0068] The step of determining whether a medical institution has antivenom serum in stock can be further optimized. In addition to simple mathematical calculations, a safety stock threshold can be set. For example, when the inventory quantity is less than 5 doses, the system will issue a warning to remind the medical institution to replenish in a timely manner. In addition, a prediction algorithm can be introduced to predict the possible consumption quantity in the future period according to historical data and make inventory allocation in advance.
[0069] The real-time update of the initial inventory quantity a, incoming quantity b, and consumption quantity c directly affects the accuracy of the judgment result. By establishing this dynamic association, the system can provide the latest and most accurate inventory information at any time, thus ensuring that the medical institutions in the recommendation list actually have the treatment ability.
[0070] Specifically, as Figure 3 shown in the architecture, the technical solution of the present application can be implemented as follows: Set up a central data processing server, which establishes real-time data exchange interfaces with the information systems of each medical institution. The initial inventory quantity a of antivenom in each medical institution is automatically updated at 0:00 every day; the newly added incoming quantity b is automatically updated when receiving new goods through docking with the supply chain management system; the consumption quantity c is recorded in real time when using antivenom through integration with the electronic medical record system. The system automatically performs an inventory calculation every 5 minutes, using the formula: actual inventory = a + b - c. Set the safety inventory threshold to 3 doses. When the actual inventory is greater than 3 doses, the medical institution is determined to have an antivenom inventory and is included in the recommended list. At the same time, the system can also display the specific inventory quantity, facilitating users to make a choice based on as much information as possible.
[0071] Through this real-time and dynamic inventory management and screening mechanism, the technical solution of the present application can effectively solve the technical problems of real-time updating of antivenom inventory and quickly screening medical institutions containing antivenom. Compared with traditional static databases, the information provided by this solution is more accurate and timely, greatly improving the efficiency and success rate of treatment.
[0072] Step S3: Sort the screened medical institutions by distance.
[0073] In step S3, calculate the route distances of each medical institution based on the user's location, and output a recommended list of medical institutions from near to far.
[0074] Optionally, the recommended list of medical institutions synchronously displays the number of kilometers and the map location of each medical institution containing antivenom from the user's location for the user to choose by themselves.
[0075] For example, in a specific embodiment, assume there is a small program named "Snake Bite First Aid System". When a user is bitten by a snake and starts the application, the system first obtains the user's GPS location information. Then, the system immediately queries the antivenom inventory status of all medical institutions within a preset range (such as a 50-kilometer radius).
[0076] Suppose the system retrieves 5 medical institutions. For each medical institution, the system performs the following steps:
[0077] Query the initial inventory quantity a: The system accesses the database of the medical institution to obtain the antivenom inventory quantity at 0:00 on the current day. For example, the initial inventory of Hospital A is 10 doses.
[0078] Query the incoming quantity b: The system checks the supply chain management system of the medical institution to obtain the incoming record on the current day. Assume that Hospital A has a newly added incoming quantity of 5 doses on the current day.
[0079] Query consumption volume c: The system accesses the electronic medical record system of the medical institution and counts the number of anti-snake venom sera used on the same day. Assume that 2 doses have been used in Hospital A on the same day.
[0080] Calculate the actual inventory: The system uses the formula a + b - c to calculate the actual inventory. For Hospital A, the actual inventory is 10 + 5 - 2 = 13 doses.
[0081] Judge the inventory status: The system compares the calculation result with a preset threshold (such as 3 doses). Since 13 > 3, the system determines that Hospital A has sufficient anti-snake venom serum inventory.
[0082] The system performs the above steps for each of the 5 medical institutions respectively, and finally screens out the medical institutions with sufficient inventory. These medical institutions are included in the recommended list and sorted according to the distance from the user. The name, address, distance, and specific anti-snake venom serum inventory quantity of each medical institution are displayed in the list.
[0083] The user can make a choice based on this list. Subsequently, the system will provide navigation services to guide the user to the selected medical institution. At the same time, the system will also send a warning message to the selected medical institution to make it ready for receiving patients.
[0084] This embodiment demonstrates the specific application of the technical solution of the present application. Through real-time data update and dynamic screening, it provides the most timely and accurate treatment information for snakebite patients, greatly improving the treatment efficiency and success rate.
[0085] Furthermore, the recommended list generated in step S3 can also generate a dynamically sorted comprehensive recommended list according to the hospital treatment capacity. The hospital treatment capacity can include evaluation indicators such as anti-snake venom serum inventory and professional medical staff qualification levels.
[0086] Based on the original distance sorting, this embodiment introduces the key factor of hospital treatment capacity to generate a dynamically sorted comprehensive recommended list. This method not only considers the convenience of geographical location but also takes into account the actual treatment capacity of the hospital, thus providing more comprehensive and accurate recommendation results and providing the best medical treatment options for users.
[0087] Specifically, the hospital treatment capacity can be quantified and evaluated in various ways. For example, a comprehensive scoring system can be set up to convert the anti-snake venom serum inventory and professional medical staff qualification levels into numerical indicators.
[0088] Among them, the inventory of antivenom can be scored according to the real-time inventory. For example, if the inventory is sufficient (more than 90%), it gets 10 points; if the inventory is average (50%-90%), it gets 7 points; if the inventory is insufficient (less than 50%), it gets 3 points. The qualification level of professional medical staff can be scored according to the professional titles, experience and professional training of relevant personnel. For example, if the proportion of medical staff with senior professional titles and rich experience in snakebite treatment exceeds 50%, it gets 10 points; if the proportion is 30%-50%, it gets 7 points; if it is less than 30%, it gets 3 points.
[0089] Furthermore, the system can update these scores dynamically. For example, whenever new antivenom is stocked or used, the system will automatically adjust the inventory score; when new professional talents are introduced to the hospital or existing personnel obtain higher qualifications, the system will also update the personnel qualification score accordingly. When generating the comprehensive recommendation list, the system can adopt the method of weighted average. Suppose the weight of the distance factor is 0.4, the weight of the antivenom inventory is 0.3, and the weight of the qualification level of professional medical staff is 0.3. The system will calculate the comprehensive score of each medical institution according to these weights and sort them from high to low to generate the final recommendation list.
[0090] Step S4: Interactive navigation.
[0091] In step S4, the user selects the target medical institution in the recommendation list and navigates to the target medical institution according to the path planning. It can be implemented by using the map API and navigation algorithm.
[0092] Furthermore, in the case of snakebite emergency and / or network signal interruption, the user can trigger at least one of the following linkage responses by a single operation of the "one-key help" button:
[0093] Transmit information through Beidou short message communication;
[0094] Automatically send the user's location and snakebite condition to the first medical institution and emergency contacts in the recommendation list;
[0095] Start one-key taxi-hailing to navigate to the first medical institution in the recommendation list.
[0096] This design not only takes into account the situation where regular network communication is available, but also provides alternative solutions for extreme situations of network signal interruption, ensuring the timely transmission of rescue information. At the same time, by automatically sending location and injury information, and providing one-key taxi-hailing navigation services, the rescue response time and medical treatment time are further shortened. This series of measures effectively solves the problem of quickly obtaining rescue in emergency situations and improves the timeliness and effectiveness of snakebite treatment.
[0097] The "one - key help" function in this embodiment can be implemented in various ways. For example, a prominent help button can be set on the user interface of the system, and the user can activate it with just a single touch. Another implementation method is to activate it through voice commands. The user can trigger the system by preset voice instructions such as "emergency help". To adapt to different usage scenarios, physical buttons can also be set on wearable devices such as smartwatches, and the user can start the help process by long - pressing this button.
[0098] The Beidou short - message communication function can be completed by integrating a Beidou communication module. When a conventional network signal interruption is detected, the system will automatically switch to the Beidou communication mode. The short - message content can include the user's GPS coordinates, a brief description of the injury condition, and a preset help code. These information will be compressed and encoded to adapt to the character limit of Beidou short - messages while ensuring the integrity of the key information transmitted.
[0099] Automatically sending location and injury information can be achieved through a pre - set information template. The system will automatically fill in the user's real - time GPS coordinates and generate a brief injury report based on the snake species identification result or symptom description previously input by the user. These information will be packaged into an emergency message and sent to the first medical institution in the recommended list and the user - preset emergency contacts through text messages, instant messaging software, or a dedicated first - aid communication channel.
[0100] The one - key taxi navigation function is implemented by integrating with the API of a third - party taxi platform. The system will automatically call the nearest available vehicle and send the user's current location and the address of the target medical institution to the driver. At the same time, the system will start real - time navigation for the user, showing the estimated arrival time and the optimal route to help the user and the medical institution better coordinate the treatment time.
[0101] To further ensure the treatment of the user's snake bite, the system continuously monitors the user's location. For example, it updates the coordinate information every 30 seconds and sends it to the medical institution and the emergency contact until the user arrives at the medical institution or manually cancels the help request.
[0102] Through the above implementation methods, this application can provide the most suitable treatment plan for users within the golden treatment time (usually 1 - 2 hours) after a snake bite occurs, significantly improving the treatment success rate.
[0103] In addition, this application further proposes a technical solution that allows users to upload their own snake - bite event data and treatment experience, and regularly update the popular science education content; and provide resource scheduling information for each medical institution during the high - incidence season or area of snake bites.
[0104] This technical solution solves the problems of resource scheduling and science popularization education in the treatment of snake bites by establishing an open information sharing platform. The actual cases and experiences uploaded by users can enrich the system database and provide valuable references for other users. The regularly updated science popularization content can continuously improve the public's awareness and response ability to snake bites. And the resource scheduling information for snake bite high-incidence seasons or regions can help medical institutions better handle emergencies and optimize resource allocation.
[0105] Furthermore, the technical solution of this application can be implemented in the following ways:
[0106] The system of the present invention is provided with a dedicated user data upload interface, allowing users to submit snake bite-related information through mobile devices or web pages. This information may include snake species identification, wound characteristics, first aid measures, treatment methods, etc. To ensure data quality, the system can set up an information review mechanism, and professional medical personnel verify and screen the uploaded content. Moreover, the system is also provided with an automated content update mechanism, which regularly extracts valuable science popularization education information from medical databases, the latest research results, and user feedback. After being sorted and edited by professionals, this information is presented to users in various forms such as pictures, videos, or interactive courses. The update frequency can be set according to actual needs. For example, basic knowledge is updated once a month, and precautions for high-incidence seasons are updated once a week.
[0107] Through machine learning and data analysis algorithms, based on historical data (such as the number of snake bite cases and geographical distribution in the same period of previous years) and real-time data (such as recently reported snake bite incidents, weather changes), predict the high-risk of snake bites in the next period of time (such as the next week or month). According to the prediction results, the system generates resource scheduling suggestions, including the quantity of antivenom serum required in each region, medical staff allocation, etc.
[0108] To achieve the above object, the present invention also provides a rapid positioning system for snake bite treatment medical institutions, wherein the rapid positioning method for snake bite treatment medical institutions as described in any of the foregoing embodiments is used, including a real-time position acquisition and first aid module, a medical institution screening module, a sorting and recommendation module, and an interactive navigation module.
[0109] The real-time position acquisition and first aid module retrieves medical institution data in the self-built snake bite database within a preset range through a map service interface, and provides first aid information for self-help according to the snake bite information input by the user. Among them, the snake bite database stores various snake bite event data, treatment methods, and drug inventory information of each medical institution that are updated in real time through the supply chain management system interface of each medical institution.
[0110] The medical institution screening module dynamically calculates the real-time inventory value of each medical institution according to the initial inventory, incoming quantity, and consumption quantity of antivenom serum.
[0111] The sorting and recommendation module calculates the path distances of each medical institution based on the user's location and outputs a recommended list of medical institutions from near to far.
[0112] The interactive navigation module enables the user to select a target medical institution from the recommended list and navigate to the target medical institution according to path planning.
[0113] Furthermore, as Figure 3 shown, the computer architecture diagram of the system may include a user interface layer, a business logic layer, a data access layer, a database layer, and a security layer.
[0114] Specifically, the user interface layer provides a user interaction interface, which may include a main interface, a snake bite medical treatment guidance page, a first aid guide page, a nearby hospital query page, a medical treatment guidance page, a doctor-patient communication page, a popular science garden page, etc. The business logic layer is used to process user requests and execute corresponding business logics, such as snake venom identification algorithms, first aid guide generation, hospital location query, online consultation processing, etc. The data access layer interacts with the cloud database to store and retrieve data such as user information, snake venom information, hospital information, and consultation records. The database layer stores data tables such as user information tables, snake venom information tables, hospital information tables, and consultation record tables. The external interface layer provides interfaces with third-party services (such as map services, etc.) to implement functions such as hospital location query and online payment. The security layer provides security functions such as user authentication, data encryption, and access control to ensure the security and privacy of user information.
[0115] To achieve the above object, the present invention also provides a computer device, including a memory, a processor, and a program stored on the memory and executable on the processor. When the processor runs the program, it can implement the steps of the method for quickly locating a snake bite treatment medical institution as described in any one of the foregoing embodiments.
[0116] The processor and the memory can be set separately or integrated together. For example, they can be integrated on a system on chip (SOC) of a terminal device. It should be understood that the processor in the embodiments of the present application may be an integrated circuit chip with signal processing capabilities. During implementation, the steps of the above method embodiments can be completed by the integrated logic circuit in the hardware of the processor or instructions in software form. The above-mentioned processor can be 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, discrete gate or transistor logic devices, discrete hardware components. It can implement or execute the various methods, steps, and logic block diagrams disclosed in the embodiments of the present application. The general-purpose processor can be a microprocessor or the processor can also be any conventional processor, etc. The steps of the method disclosed in combination with the embodiments of the present application can be directly embodied as being executed by a hardware decoding processor, or executed by a combination of hardware and software modules in the decoding processor. The software module can be located in a mature storage medium in the art such as a random access memory, a flash memory, a read-only memory, a programmable read-only memory, or an electrically erasable programmable memory, a register, etc. This storage medium is located in the memory, and the processor reads the information in the memory and combines its hardware to complete the steps of the above method.
[0117] To achieve the above object, the present invention also provides a computer-readable storage medium. The computer-readable storage medium stores executable instructions or programs. When the executable instructions or programs are processed and executed, the rapid positioning method of a snakebite treatment medical institution as described in any of the previous embodiments is implemented.
[0118] The readable storage medium is, for example, a memory. The memory can be a volatile memory or a non-volatile memory, or the memory can include both a volatile memory and a non-volatile memory. Among them, the non-volatile memory can be a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), or a flash memory. The volatile memory can be a random access memory (RAM), which is used as an external cache. By way of example but not limitation, many forms of RAM are available, such as static random access memory (SRAM), dynamic random access memory (DRAM), synchronous dynamic random access memory (SDRAM), double data rate synchronous dynamic random access memory (DDR SDRAM), enhanced synchronous dynamic random access memory (ESDRAM), synchlink dynamic random access memory (SLDRAM), and direct rambus random access memory (DR RAM).
[0119] If the integrated unit in the above embodiments is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in the above-readable storage medium. Based on such an understanding, the technical solution of the present invention, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. The software product is stored in the storage medium and includes several instructions for causing one or more devices (which can be a personal terminal, a client, or a network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of the present invention.
[0120] The preferred specific embodiments of the present invention are described in detail above. Only several implementation manners of the present invention are expressed, but it should not be construed as a limitation on the scope of the patent. The technical features of the above embodiments can be combined arbitrarily. For the sake of concise description, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, it should be considered as the scope recorded in this specification. It should be understood that those of ordinary skill in the art can make many modifications and variations according to the concept of the present invention without creative labor. Therefore, without departing from the concept of the present invention, all technical solutions that can be obtained by those skilled in the art in the technical field based on the concept of the present invention through logical analysis, reasoning or limited experiments on the basis of the prior art should be within the protection scope determined by the claims.
Claims
1. A rapid positioning method for medical institutions treating snake bites, characterized in that, It includes the following steps: Step S1: Obtain the user's real-time location information through the system applet and provide first aid information; Among them, call the medical institution data in the self-built snake bite database within the preset range through the map service interface, and provide the first aid information according to the snake bite information input by the user for self-help first; The snake bite database stores various snake bite event data, treatment methods, and drug inventory information of each medical institution updated in real time through the supply chain management system interface of each medical institution; Step S2: Screen medical institutions containing antivenom; Among them, dynamically calculate the real-time inventory value of each medical institution according to the initial inventory, purchase volume, and consumption volume of the antivenom; Step S3: Sort the screened medical institutions by distance; Among them, calculate the path distance of each medical institution according to the user's location, and output a medical institution recommendation list from near to far; Step S4: Interactive navigation; Among them, the user selects the target medical institution in the recommendation list and navigates to the target medical institution according to the path planning.
2. The rapid positioning method of a snakebite treatment medical institution according to claim 1, characterized in that In the step S1, an intelligent algorithm tool is used to assist the user or first aid personnel in initially evaluating the injury condition. The intelligent algorithm tool is combined with the symptom-snake species mapping table in the medical database: quickly help the user identify the snake species causing the injury according to the snake bite photo or feature description uploaded by the user, so as to provide targeted first aid information and provide a reference diagnostic basis for subsequent treatment; Among them, the first aid information includes at least one of the following: wound treatment method, emergency matters, recommended antivenom type.
3. The rapid positioning method of a snakebite treatment medical institution according to claim 2, wherein Associate the first aid information with medical institutions. The step S2 specifically includes the following steps: Step S2.1: Check the initial inventory a of the antivenom of each medical institution in the drug inventory in the snake bite database; Step S2.2: Query the daily newly added purchase volume b of the antivenom of each medical institution; Step S2.3: Query the consumption volume c of the antivenom of each medical institution; Step S2.4: Judge whether each medical institution has antivenom inventory: When the initial inventory a + purchase volume b - consumption volume c > 0, it is judged that the medical institution has antivenom inventory; Otherwise, it is judged that the medical institution does not have antivenom inventory, and the medical institutions without antivenom inventory will not be displayed in the subsequent recommendation list.
4. The rapid positioning method of a snakebite treatment medical institution according to claim 1, characterized in that, In the step S3, the medical institution recommendation list synchronously displays the number of kilometers and the map location of each medical institution containing antivenom from the user's location for the user to choose by themselves.
5. The rapid positioning method of a snakebite treatment medical institution according to claim 4, characterized in that, The recommendation list generated in the step S3 is further generated into a comprehensively recommended list with dynamic sorting according to the hospital's treatment ability; The hospital's treatment ability includes at least one of the following: antivenom inventory, professional medical staff qualification level.
6. The rapid positioning method of a snakebite treatment medical institution according to claim 4, characterized in that, When the user is in an emergency of snake bite and / or the network signal is interrupted, by operating the "one-key help" button once, trigger at least one of the following linkage responses: Transmit information through Beidou short message communication; Automatically send the user's location and snake bite condition to the first medical institution and emergency contact in the recommendation list; Start one-key taxi-hailing and navigate to the first medical institution in the recommendation list.
7. The rapid positioning method of a snakebite treatment medical institution according to claim 1, characterized in that The system allows users to upload their own snakebite incident data and treatment experiences and regularly updates the popular science education content; and provides resource scheduling information for each medical institution during the high-incidence seasons or regions of snakebites.
8. A rapid positioning system for snake bite treatment medical institutions, characterized in that, Using the rapid positioning method for snakebite treatment medical institutions as described in any one of claims 1-7, including: A real-time location acquisition and first aid module; wherein, medical institution data in a self-built snakebite database within a preset range is retrieved through a map service interface, and first aid information is provided based on the snakebite information input by the user for self-help first; various snakebite incident data, treatment methods, and drug inventory information of each medical institution updated in real time through the supply chain management system interface of each medical institution are stored in the snakebite database; A medical institution screening module; wherein, the real-time inventory value of each medical institution is dynamically calculated based on the initial inventory, incoming quantity, and consumption quantity of the antivenom serum; A sorting and recommendation module; wherein, the path distances of each medical institution are calculated based on the user's location, and a medical institution recommendation list is output from near to far; An interactive navigation module; wherein, when the user selects a target medical institution in the recommendation list, the user is navigated to the target medical institution according to path planning.
9. A computer device, comprising a memory, a processor, and a computer program stored on the memory and executable on the processor, characterized in that, When the processor runs the program, it implements the rapid positioning method for snakebite treatment medical institutions as described in any one of claims 1-7.
10. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores computer-executable instructions or a computer program, and when the computer-executable instructions or the computer program are processed and executed, the rapid positioning method for snakebite treatment medical institutions as described in any one of claims 1 to 7 is implemented.