Safe medical management system and method suitable for compact medical conjunct medical place

By implementing a close medical alliance safety medical management system in medical places, using camera information to monitor safe exits and patients in real time, the problem of low efficiency of traditional manual inspections is solved, and more efficient and accurate safety management and assistance is achieved.

CN120048071APending Publication Date: 2025-05-27SHENZHEN LUOHU HOSPITAL GRP
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Patent Information

Application Number
CN202510206994.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-25
Publication Date
2025-05-27

AI Technical Summary

Technical Problem

Traditional manual observation and inspection have problems of low efficiency and poor timeliness in medical places, which leads to the inability to detect and deal with abnormal conditions in time.

Method used

A secure medical management system suitable for a close-type medical alliance medical place is designed, including an information acquisition module, a determination module and an alarm module. The safety exit and target patients are monitored in real time through camera information, and the status is automatically determined and alarm information is generated.

Benefits of technology

It improves the timeliness and accuracy of safety management in medical places, ensures safe exit passage and promptly rescue target patients, and improves the safety and quality of patients' medical services.

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Abstract

The invention provides a safe medical management system and method suitable for a compact medical conjunct medical place, and the system comprises an information obtaining module, a first determination module, a first alarm module, a second determination module, a second alarm module and a third determination module, the acquisition module is used for acquiring first camera information and second camera information of a first medical place; the first determination module is used for determining a first state of the emergency exit according to the first camera information; the first alarm module is used for generating first alarm information according to the impassable state when the first state is the impassable state; the second determination module is used for determining a second state of the target patient according to the second camera information; the second alarm module is used for generating second alarm information according to the abnormal state when the second state is the abnormal state; and the third determination module is used for determining a target medical place according to the illness state information so as to meet the medical requirements of the target patient.
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Description

Technical Field

[0001] The present application relates to the field of security management technology, and in particular to a security medical management system and method applicable to close-knit medical alliance medical facilities. Background Art

[0002] In all kinds of medical places, it is crucial to ensure the safety of patients and provide timely and effective medical services. However, the traditional manual observation and inspection methods have the problems of low efficiency and poor timeliness, and are prone to omissions. When patients have abnormal conditions, medical staff cannot discover them in time and provide accurate rescue.

[0003] Therefore, how to improve the timeliness and accuracy of safety management in medical facilities needs to be solved urgently. Summary of the invention

[0004] The embodiments of the present application provide a safe medical management system and method applicable to close-knit medical alliance medical sites, which improves the timeliness and accuracy of safety management of medical sites.

[0005] In a first aspect, an embodiment of the present application provides a safe medical management system applicable to a close-knit medical alliance medical site, the system comprising an information acquisition module, a first determination module, a first alarm module, a second determination module, a second alarm module and a third determination module, wherein:

[0006] The information acquisition module is used to acquire first camera information and second camera information of a first medical site; the first camera information is used to photograph a safety exit of the first medical site; the second camera information is used to photograph a target patient of the first medical site;

[0007] The first determination module is used to determine a first state of the emergency exit according to the first camera information; the first state includes any one of the following: a passable state and an impassable state;

[0008] The first alarm module is used to generate a first alarm message according to the impassable state when the first state is in the impassable state; the first alarm message is used to prompt the staff of the first medical site to process the safety exit to ensure that the safety exit is in the impassable state;

[0009] The second determination module is used to determine the second state of the target patient according to the second camera information; the second state includes any one of the following: a normal state and an abnormal state;

[0010] The second alarm module is used to generate a second alarm message according to the abnormal state when the second state is in the abnormal state; the second alarm message is used to prompt the medical staff of the first medical place to rescue the target patient;

[0011] The third determination module is used to obtain the medical history information of the target patient, determine the condition information of the target patient according to the medical history information and the abnormal state, and determine the target medical place according to the condition information to meet the medical needs of the target patient.

[0012] In a second aspect, an embodiment of the present application provides a safe medical management method applicable to a close-knit medical alliance medical site, which is applied to the safe medical management system applicable to the close-knit medical alliance medical site as described in the first aspect, and the method includes:

[0013] Acquire first camera information and second camera information of a first medical site; the first camera information is used to photograph a safety exit of the first medical site; the second camera information is used to photograph a target patient of the first medical site;

[0014] Determine a first state of the emergency exit according to the first camera information; the first state includes any one of the following: a passable state and an impassable state;

[0015] When the first state is in the impassable state, generating a first alarm message according to the impassable state; the first alarm message is used to prompt the staff of the first medical site to process the safety exit to ensure that the safety exit is in the impassable state;

[0016] Determine a second state of the target patient according to the second camera information; the second state includes any one of the following: a normal state and an abnormal state;

[0017] When the second state is in the abnormal state, a second alarm message is generated according to the abnormal state; the second alarm message is used to prompt the medical staff of the first medical site to rescue the target patient;

[0018] The medical history information of the target patient is obtained, the condition information of the target patient is determined according to the medical history information and the abnormal state, and the target medical place is determined according to the condition information to meet the medical needs of the target patient.

[0019] In a third aspect, the present application provides a computer-readable storage medium, wherein the computer-readable storage medium stores a computer program for electronic data exchange, wherein the computer program enables a computer to execute some or all of the steps described in the second aspect of the present application.

[0020] In a fourth aspect, the present application provides an electronic device comprising: a processor and a memory, wherein the memory is used to store one or more programs, wherein the one or more programs are stored in the memory and are configured to be executed by the processor, and the program includes instructions for executing the steps in the second aspect of the present application.

[0021] In a fifth aspect, the present application provides a computer program product, wherein the computer program product includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to cause a computer to execute some or all of the steps described in the second aspect of the present application. The computer program product may be a software installation package.

[0022] The safe medical management system applicable to the medical places of the close-knit medical alliance provided in the present application comprises: an information acquisition module, a first determination module, a first alarm module, a second determination module, a second alarm module and a third determination module, wherein the information acquisition module is used to acquire the first camera information and the second camera information of the first medical place; the first camera information is used to photograph the safe exit of the first medical place; the second camera information is used to photograph the target patient of the first medical place; the first determination module is used to determine the first state of the safe exit according to the first camera information; the first state includes any one of the following: a passable state and an inpassable state; the first alarm module is used to generate a first alarm message according to the inpassable state when the first state is in the inpassable state; the first alarm message is used to generate a first alarm message according to ... The invention is used to prompt the staff of the first medical place to process the safety exit to ensure that the safety exit is in a passable state; the second determination module is used to determine the second state of the target patient according to the second camera information; the second state includes any one of the following: a normal state and an abnormal state; the second alarm module is used to generate a second alarm message according to the abnormal state when the second state is in an abnormal state; the second alarm message is used to prompt the medical staff of the first medical place to rescue the target patient; the third determination module is used to obtain the medical history information of the target patient, determine the condition information of the target patient according to the medical history information and the abnormal state, and determine the target medical place according to the condition information to meet the medical needs of the target patient, thereby improving the timeliness and accuracy of the safety management of the medical place. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings required for use in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0024] Figure 1This is a block diagram of the module composition of a safe medical management system applicable to a close-knit medical alliance medical site provided in an embodiment of the present application;

[0025] Figure 2 is a flow chart of a first determination module provided in an embodiment of the present application;

[0026] Figure 3 It is a flow chart of a safe medical management method applicable to a close-knit medical alliance medical site provided in an embodiment of the present application;

[0027] Figure 4 It is a structural schematic diagram of an electronic device provided in an embodiment of the present application. DETAILED DESCRIPTION

[0028] In order to enable those skilled in the art to better understand the solution of the present application, the technical solution in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of this application.

[0029] The terms "first", "second", etc. in the specification and claims of this application and the above-mentioned drawings are used to distinguish different objects, rather than to describe a specific order. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions. For example, a process, method, system, product or device that includes a series of steps or units is not limited to the listed steps or units, but optionally includes steps or units that are not listed, or optionally includes other steps or units inherent to these processes, methods, products or devices.

[0030] It should be understood that the term "and / or" in this article is only a description of the association relationship of associated objects, indicating that there can be three relationships. For example, A and / or B can represent: A exists alone, A and B exist at the same time, and B exists alone. In addition, the character " / " in this article indicates that the associated objects before and after are in an "or" relationship. The "plurality" appearing in the embodiments of the present application refers to two or more.

[0031] In the embodiments of the present application, "at least one item" or similar expressions refer to any combination of these items, including any combination of single items or plural items, and refer to one or more, and multiple refers to two or more. For example, at least one item of a, b, or c can represent the following seven situations: a, b, c, a and b, a and c, b and c, a, b, and c. Among them, each of a, b, and c can be an element or a set containing one or more elements.

[0032] The "connection" that appears in the embodiments of the present application refers to various connection methods such as direct connection or indirect connection to achieve communication between devices, and the embodiments of the present application do not impose any limitations on this.

[0033] Reference to "embodiments" herein means that a particular feature, structure, or characteristic described in conjunction with the embodiments may be included in at least one embodiment of the present application. The appearance of the phrase in various locations in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment that is mutually exclusive with other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described herein may be combined with other embodiments.

[0034] In all kinds of medical facilities, it is crucial to ensure the safety of patients and provide timely and effective medical services. However, the traditional manual observation and inspection methods have the problems of low efficiency and poor timeliness, and are prone to omissions. When patients have abnormal conditions, medical staff cannot discover them in time and provide accurate rescue. Therefore, how to improve the timeliness and accuracy of safety management in medical facilities needs to be solved urgently.

[0035] To solve the above problems, an embodiment of the present application provides a safe medical management system and method applicable to medical places of a close-knit medical alliance, the system comprising an information acquisition module, a first determination module, a first alarm module, a second determination module, a second alarm module and a third determination module, wherein: the information acquisition module is used to acquire first camera information and second camera information of the first medical place; the first camera information is used to photograph the safe exit of the first medical place; the second camera information is used to photograph the target patient of the first medical place; the first determination module is used to determine a first state of the safe exit according to the first camera information; the first state includes any one of the following: a passable state and an inpassable state; the first alarm module is used to generate a first alarm message according to the inpassable state when the first state is in the inpassable state; the first alarm message Used to prompt the staff of the first medical place to process the safety exit to ensure that the safety exit is in the passable state; the second determination module is used to determine the second state of the target patient according to the second camera information; the second state includes any one of the following: a normal state and an abnormal state; the second alarm module is used to generate a second alarm message according to the abnormal state when the second state is in the abnormal state; the second alarm message is used to prompt the medical staff of the first medical place to rescue the target patient; the third determination module is used to obtain the medical history information of the target patient, determine the condition information of the target patient according to the medical history information and the abnormal state, and determine the target medical place according to the condition information to meet the medical needs of the target patient, thereby improving the timeliness and accuracy of safety management of medical places.

[0036] See also Figure 1 , Figure 1 This is a block diagram of the module composition of a safe medical management system applicable to a close-knit medical alliance medical facility provided in an embodiment of the present application. The system includes: an information acquisition module, a first determination module, a first alarm module, a second determination module, a second alarm module and a third determination module.

[0037] In the embodiment of the present application, the information acquisition module is used to acquire first camera information and second camera information of the first medical site.

[0038] Among them, the first camera information is used to photograph the safety exit of the first medical place, and the second camera information is used to photograph the target patient of the first medical place. The first medical place includes but is not limited to tertiary hospitals, specialized hospitals, and community health centers, which are not specifically limited here. By monitoring the safety exit of the first medical place, it is possible to find in real time that problems such as the passage being blocked by temporarily stacked medical equipment and debris, the door of the safety exit cannot be opened normally due to a malfunction, or the evacuation sign is damaged or the lighting is insufficient, so as to promptly notify the relevant staff to clean up, repair, etc., to ensure that the exit is accessible at any time. Monitor the target patient of the first medical place, and promptly discover whether the target patient's body posture and limb movements are abnormal, so as to respond quickly and take appropriate treatment or nursing measures to maximize the protection of the life, health and medical safety of the target patient.

[0039] In the embodiment of the present application, the first determination module is used to determine the first state of the emergency exit according to the first camera information; the first state includes any one of the following: a passable state and an inpassable state.

[0040] Among them, key features can be extracted from the first camera information, such as door features, shape features, channel features, etc., and then the safety exit is analyzed based on the features to obtain the first state of the safety exit, which is not specifically limited here.

[0041] Optional, see Figure 2 , Figure 2 : is a flow chart of a first determination module provided in an embodiment of the present application. In determining the first state of the safety exit according to the first camera information, the first determination module is specifically used to:

[0042] A1. Identify and analyze the first camera information to obtain the door status of the emergency exit;

[0043] A2. If the door body is in an open state, obtaining a first position and a first volume of an obstacle corresponding to the safety exit;

[0044] A3. Determine the proportion of the exit area of ​​the safety exit occupied by the obstacle according to the first position and the first volume to obtain a first proportion;

[0045] A4. If the first ratio is greater than a preset reference ratio, the first state is determined to be the impassable state; otherwise, the first state is determined to be the passable state;

[0046] A5. If the door state is half-closed, obtain the opening and closing angle corresponding to the door state;

[0047] A6. If the opening and closing angle is less than a preset reference angle, the first state is determined to be the impassable state; otherwise, the first state is determined to be the passable state;

[0048] A7. If the door body state is a closed state, determine that the first state is the impassable state.

[0049] In a specific embodiment, the first camera information can be processed according to a preset image recognition algorithm to accurately locate the position of the emergency exit door and select the area where it is located. The image of the door area that has been located is classified and judged to identify whether the door is in an open state, a half-closed state, or a closed state. After determining that the door is in an open state, the image is further analyzed to find the obstacle situation in the emergency exit area. For example, the first position of the obstacle in the space corresponding to the emergency exit can be located by establishing a coordinate system, and then the first volume of the obstacle is calculated. Among them, for obstacles with regular shapes, such as rectangular boxes, cylindrical pipes, etc., their sizes in different dimensions can be measured through images, that is, the proportional relationship in the image is used, combined with known door frame width and other data for conversion, to obtain actual length, width, height and other size data, and then the first volume is calculated according to the corresponding geometric volume calculation formula. For obstacles with irregular shapes, a method based on 3D reconstruction technology can be used. First, the point cloud data of its surface is obtained through multi-angle camera information or special 3D scanning equipment. Then, professional 3D modeling software is used to process the point cloud data to construct a 3D model of the obstacle, and then the first volume enclosed by it is calculated.

[0050] Next, the area enclosed by the inner edge of the door frame of the emergency exit can be used as the standard, and the vertical direction covers the upper space range from the ground to the upper space required when the door body is opened as the exit area of ​​the emergency exit, which is not specifically limited here. Then, the proportion of the exit area occupied by the obstacle is determined according to the first position and the first volume to obtain the first proportion. Among them, the higher the first proportion, the more serious the obstruction of the obstacle to the emergency exit, and the more difficult it is for people to evacuate through the emergency exit; on the contrary, the lower the first proportion, the relatively small impact of the obstacle on the emergency exit, and the less difficult it is for people to evacuate through the emergency exit. According to fire safety regulations and relevant knowledge such as ergonomics, the reference proportion corresponding to the emergency exit can be pre-set, and the reference proportion indicates the maximum reasonable proportion of the exit area allowed to be occupied by the obstacle under the premise of ensuring that people can evacuate relatively smoothly and safely through the exit. When the first proportion obtained by calculation is greater than the preset reference proportion, it means that the obstacle occupies a relatively large space in the exit area of ​​the emergency exit, and has caused a relatively serious obstacle to the normal passage of people through the emergency exit. For example, assuming that the reference ratio is set to 30%, and the calculated first ratio reaches 40%, this indicates that the space occupied by the obstacle exceeds the range allowed for safe evacuation, which may cause personnel to pass sideways with difficulty, stretchers or wheelchairs to be unable to pass smoothly, and even easily cause dangerous situations such as collisions and falls during emergency evacuation. Therefore, the first state of the safety exit is determined to be an inaccessible state. If the first ratio is less than or equal to the reference ratio, it means that although there are obstacles, from the perspective of overall evacuation, its impact on the passage function of the safety exit is within an acceptable range. For example, the reference ratio is set to 30%, and the first ratio is 20%, which is lower than the reference ratio, indicating that personnel can pass through the exit relatively smoothly, and their evacuation actions will not be substantially hindered by obstacles, so it can be determined that the first state of the safety exit is a passable state.

[0051] When the door is half-closed, the angle formed by the two side edges of the door and the side edges of the door frame can be calculated to obtain the opening and closing angle corresponding to the door state. If the opening and closing angle is less than the preset reference angle, it means that the degree of opening of the door is not enough to meet the normal safety evacuation requirements, and people may be hindered when passing through, and may even cause dangerous situations such as congestion and collision, so the first state of the safety exit is determined to be an inaccessible state. On the contrary, if the opening and closing angle is greater than or equal to the reference angle, it means that the half-closed degree of the door is within an acceptable range, and people can pass through relatively smoothly. At this time, the first state is determined to be a passable state, and the exit can perform the evacuation function normally in an emergency.

[0052] When the door body is in a closed state, personnel cannot evacuate directly through the exit, and the first state is determined to be an inaccessible state.

[0053] It can be seen that by analyzing the first camera information, comprehensively considering factors such as the door status of the emergency exit and related obstacles, the first status of the emergency exit can be accurately determined, which provides a reliable basis for the safety management of medical facilities and emergency evacuation preparations, helps to promptly discover and solve the passage problems existing in the emergency exit and ensure the safety of personnel lives.

[0054] Optionally, in the aspect of determining the proportion of the exit area of ​​the safety exit occupied by the obstacle according to the first position and the first volume to obtain the first proportion, the first determining module is specifically configured to:

[0055] B1. Acquire a second position and a second volume of the exit area; the exit area is an area that personnel of the first medical site pass through from the safety exit;

[0056] B2. Determine the intersection between the first position and the second position to obtain a third position;

[0057] B3. determining a volume corresponding to the third position in the first volume to obtain a third volume;

[0058] B4. Determine the first ratio according to the ratio between the third volume and the second volume.

[0059] In a specific embodiment, the second position and the second volume corresponding to the exit area can be obtained first, wherein the exit area can ensure that people can smoothly enter and exit the door in the horizontal direction and have enough space for turning, avoiding and other operations; in the vertical direction, it includes a reasonable space height reserved from the ground to the top of the door body after it is opened, so as to avoid people bumping heads or hindering the passage of carrying equipment due to insufficient space. Then, the intersection can be determined by comparing the coordinate ranges corresponding to the first position and the second position to obtain the third position. Then, the volume of the obstacle corresponding to the third position is calculated to obtain the third volume. Finally, the ratio between the third volume and the second volume is calculated to obtain the first ratio, which represents the actual occupation degree of the obstacle in the exit area, that is, the degree of influence on the safe exit passage function.

[0060] It can be seen that by accurately measuring the impact of obstacles on the exit area from the perspective of spatial position and volume ratio, the first ratio can be reasonably determined, which is convenient for assisting in judging whether the safety exit is in a passable state.

[0061] In an embodiment of the present application, the first alarm module is used to generate a first alarm message according to the impassable state when the first state is in the impassable state; the first alarm message is used to prompt the staff of the first medical site to process the safety exit to ensure that the safety exit is in the impassable state.

[0062] Among them, the first alarm information includes but is not limited to the safety exit identification information, the description of the reason for impassability, and the urgency prompt, among which the safety exit identification information includes the number of the safety exit, the floor and the area location, for example, the safety exit on the east side of the 3rd floor of the inpatient department; the description of the reason for impassability is used to explain the specific reason why the safety exit is in an impassable state, for example, "the door is blocked by a lot of debris and cannot be pushed open", "the door body is damaged and cannot be opened normally after closing", "the equipment placed in the exit passage occupies too much space, and the obstacles occupy 50% of the exit area", so that the staff can prepare corresponding handling measures; the urgency prompt indicates the severity of the impact of the impassable state on the safe evacuation function, for example, the safety exit is completely blocked, which seriously affects the evacuation of personnel in the entire area in an emergency, and it is marked as "high urgency"; if the door body is half-closed but the opening and closing angle is slightly smaller than the reference angle, it can be marked as "medium urgency".

[0063] It can be seen that by promptly discovering and notifying staff to deal with the problem of impassable emergency exits, the good condition of the emergency exits can be effectively maintained and it can be guaranteed that they have the necessary emergency evacuation capabilities at all times.

[0064] In the embodiment of the present application, the second determination module is used to determine the second state of the target patient according to the second camera information; the second state includes any one of the following: a normal state and an abnormal state.

[0065] The second camera information may be analyzed to determine the body posture and limb movements of the target patient, and the second state of the target patient may be determined based on the body posture and limb movements.

[0066] Optionally, in determining the second state of the target patient according to the second camera information, the second determination module is specifically configured to:

[0067] C1. Identify and analyze the second camera information to obtain the limb movements and the central axis of the target patient; the central axis represents the line from the head to the feet of the target patient;

[0068] C2. If the limb movement is in a twitching state, determining the second state as the abnormal state; otherwise, determining the angle between the central axis and the ground to obtain a target angle;

[0069] C3. If the target angle is within a preset first angle range, determining that the target patient is in a standing position;

[0070] C4. If the target patient is in the standing posture and the limb movement is in a static state, determining that the second state is the normal state;

[0071] C5. If the target angle is within a preset second angle range, determining that the target patient is in a falling posture;

[0072] C6. If the target patient is in the falling posture and the limb movement is in a static state, then the second state is determined to be the abnormal state.

[0073] In a specific embodiment, the second camera information can be processed using an advanced image recognition and analysis algorithm to accurately locate the area where the target patient is located in the image, and distinguish the target patient from the background and other surrounding objects. Then identify the coordinate information of the main joints of the target patient's body, such as the joint positions of the head, shoulders, elbows, wrists, hips, knees, feet, etc., and construct the general shape of the human body by connecting each joint point, and then obtain the characteristic information related to the limb movement and the central axis. Among them, the central axis, that is, the line from the head to the foot, can be determined based on the coordinate information of each key joint point of the target patient. Then, the limb movement can be determined by tracking and analyzing the position changes of each joint point of the target patient in multiple consecutive frames of images. For example, observe the change amplitude and change frequency of the limb joint angles and the coordination of the movements between the limbs, etc., which are not specifically limited here. If the joint angle changes frequently, greatly and involuntarily in a short period of time, it means that the limb movement is in a twitching state; if the joint maintains a relatively fixed angle for a long time and the limb has almost no position change, it can be judged that the limb movement is in a static state; and normal and natural limb movements are manifested as regular and coordinated changes in joint angles, which conform to the movement patterns of daily human activities, such as natural swinging of the arms, normal flexion and extension of the legs when walking, etc.

[0074] Then, when the limb movement is in a twitching state, the second state can be determined to be an abnormal state. On the contrary, that is, when the limb movement is not in a twitching state, the angle between the central axis and the ground is further determined to obtain the target angle. If the target angle is in a preset first angle range, it is determined that the target patient is in a standing position. Among them, the first angle range can be set by a large amount of actual human standing posture sample data and ergonomics-related knowledge. For example, the first angle range is 85 degrees to 95 degrees, indicating that the current body posture of the target patient is relatively stable and conforms to the normal standing posture. When the target patient is in a standing position and the limb movement is in a static state, the second state is determined to be a normal state, that is, the target patient maintains a normal state of standing still, resting or quietly waiting. If the target angle is in a preset second angle range, it is determined that the target patient is in a falling posture. Among them, the second angle range can be set according to the actual human posture data and the characteristics of the falling posture. For example, the second angle range is 0 degrees to 30 degrees. When the target patient is in a falling posture and the limb movement is in a static state, the second state is determined to be an abnormal state. Among them, the patient's falling posture indicates that an emergency may have occurred, and the limbs are in a static state, indicating that the target patient may have lost the ability to move independently and cannot rely on his own strength to change the current falling state. It may be caused by loss of consciousness, serious physical injuries, or extreme weakness due to illness. This situation is an obvious abnormal state, and medical staff need to quickly check, evaluate the condition, and take appropriate first aid or treatment measures to avoid the patient's condition worsening or even life-threatening due to delayed treatment time.

[0075] It can be seen that by analyzing key features such as limb movements and central axis in the second camera information, a comprehensive and integrated judgment can be made as to whether the second state of the target patient is normal or abnormal, which provides a scientific and effective basis for medical staff to timely and accurately grasp the changes in the physical condition of the target patient, helps to improve the level of patient monitoring and emergency response capabilities in medical facilities, and ensure the health and safety of patients.

[0076] In an embodiment of the present application, the second alarm module is used to generate a second alarm message according to the abnormal state when the second state is in the abnormal state; the second alarm message is used to prompt the medical staff of the first medical place to rescue the target patient.

[0077] Among them, the second alarm information includes but is not limited to patient identification information, abnormal status description, and patient location information. Among them, the patient identification information includes name, gender, ward number, bed number, etc. The abnormal status description is used to explain what specific abnormal state the patient is in, for example, "the patient has limb convulsions, the frequency of convulsions is about 10 times per minute, and the duration has reached 2 minutes", "the patient is in a lying position, the limbs are still, the facial expression is painful, and it is suspected that he has lost consciousness", etc. The patient location information includes the location guide of the patient's area, which can be the specific location of the patient on the floor, such as at the end of the corridor, close to the nurse station, etc., to facilitate medical staff to reach the patient as quickly as possible.

[0078] It can be seen that by monitoring the patient's status in real time and issuing alarms, medical services can be made more accurate and timely, which improves the quality of medical services and management level of the entire medical facility, creating a safer and more reliable medical environment for patients.

[0079] In an embodiment of the present application, the third determination module is used to obtain the medical history information of the target patient, determine the condition information of the target patient based on the medical history information and the abnormal state, and determine the target medical place based on the condition information to meet the medical needs of the target patient.

[0080] Among them, the target patient's medical history information can be obtained through the target patient's electronic medical record information, which includes the patient's detailed diagnosis and treatment information when he was treated in the first medical place and other medical places, and can comprehensively and objectively reflect the patient's past health status and disease development trajectory. The abnormal state of the target patient is associated with the medical history information to obtain associated information. For example, if the target patient's medical history information includes a history of heart disease, and chest pain, dyspnea and limb weakness occur, it may be a manifestation of a heart attack or worsening of the disease; for example, if the target patient's medical history information includes a history of epilepsy, and the abnormal state has limb convulsions and loss of consciousness, it may be a recurrence of epilepsy. It should be noted that when the target patient is determined to be in an abnormal state through the second camera information, the target patient can be further observed, and feedback information from the medical staff after the examination of the target patient can be received to determine the specific abnormal state of the target patient, such as changes in the target patient's expression, demeanor, skin, etc. Finally, the target medical place is determined according to the target patient's disease information to meet the target patient's medical needs.

[0081] Optionally, in determining the target medical site according to the condition information, the third determination module is specifically used to:

[0082] D1. Acquire the medical resources of the first medical place to obtain the first medical resources;

[0083] D2. Determine the target medical needs corresponding to the condition information;

[0084] D3. If the first medical resource meets the target medical need, determining the first medical site as the target medical site;

[0085] D4. If the first medical resource does not meet the target medical need, a preset reference medical site list is obtained; the reference medical site list includes multiple second medical sites, and the medical resources corresponding to each second medical site meet the target medical need;

[0086] D5. Obtaining location information of each second medical site in the plurality of second medical sites to obtain a plurality of location information;

[0087] D6. Screen the multiple second medical sites according to the multiple location information to obtain the target medical site.

[0088] In a specific embodiment, the medical resources of the first medical place where the target patient is located can be obtained to obtain the first medical resources. The first medical resources include but are not limited to human resources, medical equipment resources, ward and bed resources, medicines and medical consumables resources, which are not specifically limited here. According to the condition information of the target patient, the target medical needs are determined. For example, if the condition information is acute myocardial infarction, the corresponding target medical needs are cardiovascular physicians, cardiac interventional equipment such as angiography machines, heart stents, etc. If the condition information is epileptic seizures, the target medical needs are neurologists, electroencephalogram equipment, cranial magnetic resonance imaging equipment, etc. If the first medical resources do not meet the target medical needs, a preset reference medical place list is obtained. Among them, the reference medical place list is obtained by screening according to the target medical needs, and the medical resources corresponding to each second medical place in the reference medical place list meet the target medical needs. Then obtain the location information of each second medical place, screen the second medical place according to the location information, and obtain the target medical place.

[0089] In one possible embodiment, multiple medical sites can be centrally managed, that is, the human resources, technology, equipment and other resources of different medical sites can be integrated to achieve the sharing and optimal allocation of medical resources within the medical alliance. Among them, medical sites include but are not limited to tertiary hospitals, specialized hospitals, community health centers, medical service points, and home wards. Each medical site assumes different functions in medical services and cooperates with each other. Through the secure medical management system, a unified management model is implemented within the medical alliance, including information management center, human resources management, comprehensive service management, quality control management, financial management center, and science and education management center, so as to reduce management levels, improve management efficiency, and ensure the homogeneity and continuity of medical services. Among them, the secure medical management system can also be used to achieve information interconnection between medical institutions, including electronic medical record sharing, mutual recognition of inspection and test results, telemedicine collaboration, etc., to facilitate patients' medical treatment and improve the convenience and accuracy of medical services.

[0090] Among them, tertiary hospitals and specialized hospitals concentrate advanced medical equipment and high-quality professional talents, have significant advantages in the diagnosis and treatment of difficult and serious diseases, and can provide patients with high-level medical services; community health centers can be close to community residents and provide basic medical services and public health services, such as diagnosis and treatment of common and frequently occurring diseases, vaccinations, health examinations, etc., and can also conduct long-term tracking and management of the health status of community residents, establish health records, carry out chronic disease management, rehabilitation guidance and other work, and promote the improvement of residents' health level; medical service points refer to medical service points set up for special areas or specific groups of people, including enterprises, schools, remote areas, etc., which can facilitate the group to obtain medical services nearby and provide targeted medical services, such as occupational health examinations, psychological counseling, emergency medical treatment, etc.; home wards can provide a place for some patients with stable conditions but who need long-term care and rehabilitation to receive medical services at home, so that patients can receive treatment and care in a familiar home environment, and medical staff can regularly visit patients to provide medical services, including condition observation, treatment and nursing, rehabilitation training, etc., and at the same time guide family members to carry out daily care to improve the quality of life of patients.

[0091] It should be noted that community health centers are usually located in or around communities, and residents can reach them by walking or traveling a short distance. When patients seek medical treatment, they can save time and transportation costs, especially for the elderly, children and residents with limited mobility. It is more convenient and quick to seek medical treatment. For common colds, fevers, coughs, diarrhea and other diseases, as well as some common chronic diseases such as hypertension and diabetes, residents can seek medical treatment at community health centers. Medical staff at community health centers can conduct personalized diagnosis and monitoring according to the personal conditions of residents to improve the level of medical services. The service hours of community health centers are relatively long, which can meet the medical needs of residents at different time periods, avoiding the trouble of taking leave and waiting in line when going to tertiary hospitals for medical treatment. Community health centers can also provide residents with health examination services on a regular basis, including general physical examinations, blood routine tests, urine routine tests, liver function, kidney function, blood sugar, blood lipids, electrocardiograms and other items, which help residents to understand their health status in a timely manner, discover potential health problems at an early stage, and achieve early prevention, early diagnosis and early treatment. Among them, the medical insurance reimbursement rate for medical treatment in community health centers is usually higher than that of tertiary hospitals, and residents' out-of-pocket expenses are relatively small, which can reduce the medical economic burden of residents, especially for patients with chronic diseases who need long-term medication or treatment, and can save corresponding medical expenses. If residents find that their condition is more serious or complicated when they visit community health centers, the safe medical management system can screen the corresponding medical venues and refer patients to higher-level hospitals for further diagnosis and treatment in a timely manner. If the patient's condition stabilizes in the higher-level hospital, he or she can also be transferred back to the community health center for rehabilitation and follow-up management to ensure that residents receive continuous and effective medical services.

[0092] It can be seen that by managing medical facilities at different levels and guiding the rational diversion of patients, it can not only alleviate the medical pressure on tertiary hospitals and promote the effective implementation of the tiered diagnosis and treatment system, but also avoid excessive concentration or idle waste of medical resources, make more rational use of limited resources, and improve the overall efficiency of medical resources.

[0093] Optionally, in the aspect of screening the plurality of second medical sites according to the plurality of location information to obtain the target medical site, the third determining module is specifically configured to:

[0094] E1. Acquire the target position of the target patient;

[0095] E2. Analyze each of the plurality of position information with the target position to obtain a plurality of optimal routes; each optimal route corresponds to one position information;

[0096] E3. Obtaining the distance length and traffic convenience of each of the multiple optimal routes, to obtain multiple distance lengths and multiple traffic conveniences; the traffic convenience indicates the road condition and traffic tool coverage of the optimal route, the better the road condition and the higher the traffic tool coverage, the higher the traffic convenience;

[0097] E4. Performing weighted calculation on the multiple route lengths and the multiple traffic convenience levels according to a preset weight group to obtain multiple target scores;

[0098] E5. Determine the second medical site corresponding to the maximum target score among the multiple target scores as the target medical site.

[0099] In a specific embodiment, the target position of the target patient is first obtained, and then different position information and the target position are analyzed to calculate multiple optimal routes. Then, the distance length and traffic convenience corresponding to each optimal route are obtained, wherein the distance length refers to the actual road distance from the target position of the target patient to the corresponding second medical place along the optimal route, which can be measured in units of length such as kilometers and meters. The traffic convenience comprehensively considers the road conditions and transportation coverage of the optimal route. The road conditions refer to real-time road conditions information, such as whether the road is unobstructed and the degree of congestion, which can be reflected by sections marked with different colors, green for unobstructed, yellow for slow traffic, and red for congestion; the transportation coverage indicates the public transportation available around the route, such as the number of bus routes, whether there is a subway station, the degree of connection between the bus stop and the route, and whether it is convenient to take a taxi. The higher the transportation coverage, the more convenient the travel of patients and their families. Among them, the transportation convenience can be divided into levels, such as high, medium, and low, and can also correspond to the three quantitative values ​​of 3, 2, and 1, which are not specifically limited here.

[0100] Next, the weight group can be set according to the actual situation and different needs. For example, for patients with critical conditions, the weight of the distance can be set relatively high, such as 0.7, and the weight of the traffic convenience can be set to 0.3; for patients with non-critical conditions, they can choose a more flexible travel method. The weight of the distance can be set to 0.4 and the weight of the traffic convenience can be set to 0.6. There is no specific limitation here. Then, each distance length and the corresponding traffic convenience are weighted according to the weight group to obtain multiple target scores, which are used to compare the advantages and disadvantages of various medical places. Finally, the second medical place corresponding to the maximum target score is used as the target medical place, which can shorten the patient's journey time to a certain extent and ensure that the travel process is relatively convenient.

[0101] Optionally, the weight group includes a first weight and a second weight. In the aspect of performing weighted calculation on the multiple distance lengths and the multiple traffic convenience levels according to the preset weight group to obtain multiple target scores, the third determination module is specifically used to:

[0102] F1. Obtaining a first distance length and a first traffic convenience level corresponding to a first optimal route; the first optimal route is any optimal route among the multiple optimal routes;

[0103] F2. Calculate the first distance length according to the first weight to obtain a first reference score;

[0104] F3. Calculate the first traffic convenience level according to the second weight to obtain a second reference score;

[0105] F4. Determine that the sum of the first reference score and the second reference score is the target score corresponding to the first optimal route among the multiple target scores.

[0106] In a specific embodiment, the first distance length and the first traffic convenience level corresponding to the first optimal route may be determined, and then the first weight and the first distance length may be multiplied to obtain a first reference score, and the second weight and the first traffic convenience level may be multiplied to obtain a second reference score. Then, the sum of the first reference score and the second reference score may be used as the target score corresponding to the first optimal route.

[0107] It can be seen that by calculating the target score corresponding to each optimal route, a horizontal comparison can be made among multiple second medical places. The higher the target score, the more advantages the second medical place pointed to by the route has for the patient in terms of both distance and traffic convenience, thereby determining the second medical place as the target medical place.

[0108] It can be seen that the safe medical management system applicable to the medical places of the close-knit medical alliance provided in the present application includes an information acquisition module, a first determination module, a first alarm module, a second determination module, a second alarm module and a third determination module, wherein: the information acquisition module is used to obtain the first camera information and the second camera information of the first medical place; the first camera information is used to photograph the safe exit of the first medical place; the second camera information is used to photograph the target patient of the first medical place; the first determination module is used to determine the first state of the safe exit according to the first camera information; the first state includes any one of the following: a passable state and an inpassable state; the first alarm module is used to generate a first alarm message according to the inpassable state when the first state is in the inpassable state; the first alarm message is used to prompt the The staff of the first medical place processes the safety exit to ensure that the safety exit is in the passable state; the second determination module is used to determine the second state of the target patient according to the second camera information; the second state includes any one of the following: a normal state and an abnormal state; the second alarm module is used to generate a second alarm message according to the abnormal state when the second state is in the abnormal state; the second alarm message is used to prompt the medical staff of the first medical place to rescue the target patient; the third determination module is used to obtain the medical history information of the target patient, determine the condition information of the target patient according to the medical history information and the abnormal state, and determine the target medical place according to the condition information to meet the medical needs of the target patient, thereby improving the timeliness and accuracy of the safety management of the medical place.

[0109] See also Figure 3 , Figure 3 It is a flow chart of a safe medical management method applicable to a close-knit medical alliance medical site provided in an embodiment of the present application, which is applied to the safe medical management system applicable to the close-knit medical alliance medical site described in the above embodiment, and the method includes but is not limited to the following steps:

[0110] S301, obtaining first camera information and second camera information of a first medical site; the first camera information is used to photograph a safety exit of the first medical site; the second camera information is used to photograph a target patient of the first medical site;

[0111] S302, determining a first state of the emergency exit according to the first camera information; the first state includes any one of the following: a passable state and an impassable state;

[0112] S303: when the first state is in the impassable state, generating a first alarm message according to the impassable state; the first alarm message is used to prompt the staff of the first medical site to process the safety exit to ensure that the safety exit is in the impassable state;

[0113] S304, determining a second state of the target patient according to the second camera information; the second state includes any one of the following: a normal state and an abnormal state;

[0114] S305: when the second state is in the abnormal state, generating a second alarm message according to the abnormal state; the second alarm message is used to prompt the medical staff of the first medical place to rescue the target patient;

[0115] S306: Obtain the medical history information of the target patient, determine the condition information of the target patient according to the medical history information and the abnormal state, and determine the target medical place according to the condition information to meet the medical needs of the target patient.

[0116] In a specific implementation, the safe medical management method applicable to the close-knit medical alliance medical facilities described in the embodiments of the present invention may also include other implementation methods described in the safe medical management system applicable to the close-knit medical alliance medical facilities provided in the above embodiments of the present invention, which will not be repeated here.

[0117] Combine the following Figure 4 The electronic device in the embodiment of the present application is described. Figure 4 is a schematic diagram of the structure of an electronic device provided in an embodiment of the present application, such as Figure 4 As shown, the electronic device includes one or more processors, a memory, a communication interface and one or more programs, and the processor is communicatively connected with the memory and the communication interface via an internal communication bus.

[0118] Among them, the processor is mainly used for:

[0119] Acquire first camera information and second camera information of a first medical site; the first camera information is used to photograph a safety exit of the first medical site; the second camera information is used to photograph a target patient of the first medical site;

[0120] Determine a first state of the emergency exit according to the first camera information; the first state includes any one of the following: a passable state and an impassable state;

[0121] When the first state is in an impassable state, a first alarm message is generated according to the impassable state; the first alarm message is used to prompt the staff of the first medical site to process the safety exit to ensure that the safety exit is in a passable state;

[0122] Determine a second state of the target patient according to the second camera information; the second state includes any one of the following: a normal state and an abnormal state;

[0123] When the second state is in an abnormal state, a second alarm message is generated according to the abnormal state; the second alarm message is used to prompt the medical staff of the first medical place to rescue the target patient;

[0124] Obtain the target patient's medical history information, determine the target patient's condition information based on the medical history information and abnormal conditions, and determine the target medical location based on the condition information to meet the target patient's medical needs.

[0125] The one or more programs are stored in the above-mentioned memory and are configured to be executed by the above-mentioned processor, and the one or more programs include instructions for executing any step in the above-mentioned embodiments.

[0126] Among them, the processor can be, for example, a central processing unit (CPU), a general processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field programmable gate array (FPGA) or other programmable logic devices, transistor logic devices, hardware components or any combination thereof. It can implement or execute various exemplary logic blocks, units and circuits described in conjunction with the disclosure of this application. The processor can also be a combination that implements a computing function, such as a combination of one or more microprocessors, a combination of a DSP and a microprocessor, and the like. The communication unit can be a communication interface, a transceiver, a transceiver circuit, etc., and the storage unit can be a memory.

[0127] The memory may be a volatile memory or a nonvolatile memory, or may include both volatile and nonvolatile memories. Among them, the nonvolatile memory may be a read-only memory (ROM), a programmable ROM (PROM), an erasable programmable ROM (EPROM), an electrically erasable programmable ROM (EEPROM), or a flash memory. The volatile memory may be a random access memory (RAM), which is used as an external cache. By way of example and not limitation, many forms of random access memory (RAM) are available, such as static RAM (SRAM), dynamic random access memory (DRAM), synchronous DRAM (SDRAM), double data rate synchronous dynamic random access memory (DDR SDRAM), enhanced synchronous dynamic random access memory (ESDRAM), synchronous link DRAM (SLDRAM), and direct RAM bus random access memory (DR RAM).

[0128] It is understandable that the electronic device may include more or fewer structural elements than those in the above structural block diagram, for example, including a power module, physical buttons, a Wi-Fi module, a speaker, a Bluetooth module, a sensor, a display module, etc., which are not limited here.

[0129] An embodiment of the present application also provides a computer-readable storage medium, wherein the computer-readable storage medium stores a computer program for electronic data exchange, and the computer program enables a computer to execute part or all of the steps of the safe medical management method applicable to the close-knit medical alliance medical facilities as described in the above embodiments, and the above-mentioned computer includes an electronic device.

[0130] The present application also provides a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to cause a computer to execute some or all of the steps of the safe medical management method applicable to a close-knit medical alliance medical site as described in the above embodiment. The computer program product may be a software installation package, and the computer includes an electronic device.

[0131] It should be noted that, for the above-mentioned various embodiments, for the sake of simple description, they are all expressed as a series of action combinations. Those skilled in the art should be aware that the present application is not limited by the described order of actions, because some steps in the embodiments of the present application can be performed in other orders or simultaneously. In addition, those skilled in the art should also be aware that the embodiments described in the specification are all preferred embodiments, and the actions, steps, modules or units involved are not necessarily required by the embodiments of the present application.

[0132] In the above embodiments, the embodiments of the present application have different focuses on the description of each embodiment. For parts that are not described in detail in a certain embodiment, please refer to the relevant descriptions of other embodiments.

[0133] Those skilled in the art can understand that to implement all or part of the processes in the above-mentioned embodiments, the processes can be completed by computer programs to instruct related hardware, and the programs can be stored in computer-readable storage media. When the programs are executed, they can include the processes of the above-mentioned embodiments. The aforementioned storage media include: ROM or random access memory RAM, magnetic disk or optical disk and other media that can store program codes.

[0134] The steps of the method or algorithm described in the embodiments of the present application can be implemented in hardware or by executing software instructions by a processor. The software instructions can be composed of corresponding software modules, and the software modules can be stored in RAM, flash memory, ROM, EPROM, electrically erasable programmable read-only memory (electrically EPROM, EEPROM), registers, hard disks, mobile hard disks, read-only compact disks (CD-ROMs) or any other form of storage medium known in the art. An exemplary storage medium is coupled to the processor so that the processor can read information from the storage medium and write information to the storage medium. Of course, the storage medium can also be a component of the processor. The processor and the storage medium can be located in an ASIC. In addition, the ASIC can be located in a terminal device or a management device. Of course, the processor and the storage medium can also be present in a terminal device or a management device as discrete components.

[0135] Those skilled in the art should be aware that in one or more of the above examples, the functions described in the embodiments of the present application can be implemented in whole or in part by software, hardware, firmware, or any combination thereof. When implemented using software, it can be implemented in whole or in part in the form of a computer program product. The computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on a computer, the process or function described in the embodiments of the present application is generated in whole or in part. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another computer-readable storage medium. For example, the computer instructions can be transmitted from a website site, computer, server, or data center to another website site, computer, server, or data center by wired (e.g., coaxial cable, optical fiber, digital subscriber line (digital subscriber line, DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) mode. The computer-readable storage medium can be any available medium that a computer can access or a data storage device such as a server or data center that includes one or more available media integrations. The available medium may be a magnetic medium (eg, a floppy disk, a hard disk, a magnetic tape), an optical medium (eg, a digital video disc (DVD)), or a semiconductor medium (eg, a solid state disk (SSD)).

[0136] The modules / units included in the devices and products described in the above embodiments may be software modules / units or hardware modules / units, or may be partially software modules / units and partially hardware modules / units. For example, for the devices and products applied to or integrated in the chip, the modules / units included therein may all be implemented in the form of hardware such as circuits, or at least some of the modules / units may be implemented in the form of software programs, which run on the processor integrated inside the chip, and the remaining (if any) modules / units may be implemented in the form of hardware such as circuits; for the devices and products applied to or integrated in the chip module, the modules / units included therein may all be implemented in the form of hardware such as circuits, and different modules / units may be located in the same component (such as a chip, circuit module, etc.) or in different components of the chip module, or at least some of the modules / units may be implemented in the form of software programs. The software programs run on the processor integrated inside the chip, and the remaining (if any) modules / units may be implemented in the form of hardware such as circuits. It is implemented in the form of a software program, which runs on a processor integrated inside the chip module, and the remaining (if any) modules / units can be implemented in hardware such as circuits; for various devices and products applied to or integrated in the terminal equipment, the various modules / units contained therein can be implemented in hardware such as circuits, and different modules / units can be located in the same component (for example, chip, circuit module, etc.) or in different components in the terminal equipment, or, at least some modules / units can be implemented in the form of a software program, which runs on a processor integrated inside the terminal equipment, and the remaining (if any) modules / units can be implemented in hardware such as circuits.

[0137] The specific implementation methods described above further illustrate the purpose, technical solutions and beneficial effects of the embodiments of the present application. It should be understood that the above description is only the specific implementation method of the embodiments of the present application and is not intended to limit the protection scope of the embodiments of the present application. Any modifications, equivalent substitutions, improvements, etc. made on the basis of the technical solutions of the embodiments of the present application should be included in the protection scope of the embodiments of the present application.

Claims

1. A safe medical management system applicable to medical places of close-knit medical alliances, characterized in that: The system includes an information acquisition module, a first determination module, a first alarm module, a second determination module, a second alarm module and a third determination module, wherein: The information acquisition module is used to acquire first camera information and second camera information of a first medical site; the first camera information is used to photograph a safety exit of the first medical site; the second camera information is used to photograph a target patient of the first medical site; The first determination module is used to determine a first state of the emergency exit according to the first camera information; the first state includes any one of the following: a passable state and an impassable state; The first alarm module is used to generate a first alarm message according to the impassable state when the first state is in the impassable state; the first alarm message is used to prompt the staff of the first medical site to process the safety exit to ensure that the safety exit is in the impassable state; The second determination module is used to determine the second state of the target patient according to the second camera information; the second state includes any one of the following: a normal state and an abnormal state; The second alarm module is used to generate a second alarm message according to the abnormal state when the second state is in the abnormal state; the second alarm message is used to prompt the medical staff of the first medical place to rescue the target patient; The third determination module is used to obtain the medical history information of the target patient, determine the condition information of the target patient according to the medical history information and the abnormal state, and determine the target medical place according to the condition information to meet the medical needs of the target patient.

2. The system according to claim 1, characterized in that In determining the first state of the emergency exit according to the first camera information, the first determining module is specifically configured to: Identify and analyze the first camera information to obtain the door status of the emergency exit; If the door body state is an open state, obtaining a first position and a first volume of an obstacle corresponding to the safety exit; Determine the proportion of the exit area of ​​the safety exit occupied by the obstacle according to the first position and the first volume, to obtain a first proportion; If the first ratio is greater than a preset reference ratio, determining that the first state is the impassable state; Otherwise, the first state is determined to be the passable state; If the door body state is a half-closed state, obtaining the opening and closing angle corresponding to the door body state; If the opening and closing angle is less than a preset reference angle, determining that the first state is the impassable state; Otherwise, the first state is determined to be the passable state; If the door body state is a closed state, the first state is determined to be the impassable state.

3. The system according to claim 2, characterized in that In the aspect of determining the proportion of the exit area of ​​the safety exit occupied by the obstacle according to the first position and the first volume to obtain the first proportion, the first determining module is specifically configured to: Acquire a second position and a second volume of the exit area; the exit area is an area passed by personnel of the first medical site through the safety exit; Determine an intersection between the first position and the second position to obtain a third position; determining a volume corresponding to the third position in the first volume to obtain a third volume; The first ratio is determined according to a ratio between the third volume and the second volume.

4. The system according to claim 1, characterized in that In determining the second state of the target patient according to the second camera information, the second determination module is specifically used to: Identify and analyze the second camera information to obtain the limb movement and the central axis of the target patient; the central axis represents the line from the head to the feet of the target patient; If the limb movement is in a twitching state, determining the second state as the abnormal state; Otherwise, the angle between the central axis and the ground is determined to obtain a target angle; If the target angle is within a preset first angle range, it is determined that the target patient is in a standing position; If the target patient is in the standing posture and the limb movement is in a static state, determining that the second state is the normal state; If the target angle is within a preset second angle range, it is determined that the target patient is in a falling posture; If the target patient is in the falling posture and the limb movement is in a static state, the second state is determined to be the abnormal state.

5. The system according to any one of claims 1 to 4, characterized in that: In determining the target medical site according to the condition information, the third determination module is specifically used to: Acquire the medical resources of the first medical place to obtain the first medical resources; Determine the target medical needs corresponding to the condition information; If the first medical resource meets the target medical need, determining the first medical site as the target medical site; If the first medical resource does not meet the target medical need, a preset reference medical site list is obtained; the reference medical site list includes multiple second medical sites, and the medical resources corresponding to each second medical site meet the target medical need; Acquire location information of each second medical site in the plurality of second medical sites to obtain a plurality of location information; The plurality of second medical sites are screened according to the plurality of location information to obtain the target medical site.

6. The system according to claim 5, characterized in that In the aspect of screening the plurality of second medical sites according to the plurality of location information to obtain the target medical site, the third determination module is specifically used to: Acquiring a target position of the target patient; Analyze each of the plurality of position information with the target position to obtain a plurality of optimal routes; each optimal route corresponds to one position information; Obtaining the distance length and traffic convenience of each of the multiple optimal routes to obtain multiple distance lengths and multiple traffic conveniences; the traffic convenience represents the road condition and traffic tool coverage of the optimal route, and the better the road condition and the higher the traffic tool coverage, the higher the traffic convenience; Performing weighted calculations on the multiple distance lengths and the multiple traffic convenience levels according to a preset weight group to obtain multiple target scores; A second medical site corresponding to a maximum target score among the multiple target scores is determined as the target medical site.

7. The system according to claim 6, characterized in that The weight group includes a first weight and a second weight. In the aspect of performing weighted calculation on the multiple distance lengths and the multiple traffic convenience levels according to the preset weight group to obtain multiple target scores, the third determination module is specifically used to: Obtaining a first distance length and a first traffic convenience level corresponding to a first optimal route; the first optimal route is any optimal route among the multiple optimal routes; Calculating the first distance length according to the first weight to obtain a first reference score; Calculating the first traffic convenience level according to the second weight to obtain a second reference score; The sum of the first reference score and the second reference score is determined as the target score corresponding to the first optimal route among the multiple target scores.

8. A safe medical management method applicable to a close-knit medical alliance medical site, characterized in that: The method is applied to a safe medical management system applicable to a close-knit medical alliance medical site as described in any one of claims 1 to 7, the method comprising: Acquire first camera information and second camera information of a first medical site; the first camera information is used to photograph a safety exit of the first medical site; the second camera information is used to photograph a target patient of the first medical site; Determine a first state of the emergency exit according to the first camera information; the first state includes any one of the following: a passable state and an impassable state; When the first state is in the impassable state, generating a first alarm message according to the impassable state; the first alarm message is used to prompt the staff of the first medical site to process the safety exit to ensure that the safety exit is in the impassable state; Determine a second state of the target patient according to the second camera information; the second state includes any one of the following: a normal state and an abnormal state; When the second state is in the abnormal state, a second alarm message is generated according to the abnormal state; the second alarm message is used to prompt the medical staff of the first medical site to rescue the target patient; The medical history information of the target patient is obtained, the condition information of the target patient is determined according to the medical history information and the abnormal state, and the target medical place is determined according to the condition information to meet the medical needs of the target patient.

9. An electronic device, characterized in that: include: A processor, a memory, a communication interface, and one or more programs; The one or more programs are stored in the memory and configured to be executed by the processor, the programs comprising instructions for executing the steps in the method of claim 8.

10. A computer-readable storage medium, characterized in that: The computer-readable storage medium stores a computer program, which includes program instructions. When the program instructions are executed by a processor, the processor is caused to perform the method according to claim 8.