Fabricated ward construction method and system and electronic equipment
By obtaining building area and patient information to build a regional three-dimensional model and selecting and analyzing it in combination with patient needs, the adaptability problem of structural design in the construction of prefabricated wards is solved, the accuracy and pertinence of the ward location and plan are achieved, and the practicality of the ward is improved.
Patent Information
- Application Number
- CN202510454632.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-11
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2045-04-11
AI Technical Summary
The existing prefabricated ward construction technology lacks adaptability in structural design, which is difficult to meet patients' diverse needs for the spatial layout and functional partition of ward buildings, reducing the practicality and pertinence of prefabricated wards.
By obtaining building area information and receiving patient information, a three-dimensional regional model is constructed, and the selection and analysis is carried out in combination with patient needs is determined to determine the target construction location and plan, including information acquisition module, model construction module and selection and analysis module, to achieve the organic combination of patient needs and site conditions.
Accurately find the most suitable location for building a prefabricated ward, meet the convenience of patients' medical treatment and comply with the medical procedures, and improve the practicality and pertinence of the prefabricated ward.
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Figure CN120408782A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of protective facility monitoring, and in particular to a method, system, and electronic equipment for constructing an assembled ward. Background Art
[0002] With the continuous advancement of modern medical technology and the growing demand for healthcare, the design and construction of hospital buildings face increasing challenges. In particular, when responding to public health emergencies, such as infectious disease outbreaks, hospitals must be able to respond quickly and isolate patients efficiently. Traditional hospital building models often fail to meet these requirements. Therefore, prefabricated wards, as a new architectural form, are gradually gaining widespread attention and application.
[0003] Prefabricated wards are constructed on-site from factory-produced components. Compared to traditional hospital buildings, prefabricated wards offer significant advantages. In recent years, with the advancement of building industrialization and industrialization, prefabricated ward construction technology has rapidly developed. Numerous companies and research institutions at home and abroad have invested in research and development to promote the innovation and application of prefabricated ward technology. Currently, prefabricated wards are widely used in various medical settings, such as infectious disease hospitals, makeshift hospitals, and temporary isolation sites.
[0004] Technically, the construction of prefabricated wards involves multiple aspects, including structural design, external enclosure systems, equipment and piping systems, and interior systems. Steel structures, due to their lightweight, high-strength, and seismic resistance, are a common structural form for prefabricated wards. Furthermore, the external enclosure system emphasizes integrated design, advocating for the integration of decorative and thermal insulation materials to improve building performance and durability. Equipment and piping systems utilize integrated technology to achieve coordination with architectural, structural, and electromechanical design. The interior system prioritizes environmental protection, energy conservation, and ease of maintenance, utilizing components such as lightweight partitions, integrated ceilings, and raised floors.
[0005] However, although prefabricated buildings have significant advantages in the field of hospital construction, the existing prefabricated ward construction technology lacks adaptability in structural design, making it difficult to meet patients' diverse needs for the spatial layout and functional zoning of ward buildings, thereby reducing the practicality and pertinence of prefabricated wards. Summary of the Invention
[0006] In order to solve at least one of the above technical problems, the present application provides a method, system and electronic equipment for constructing an assembled ward.
[0007] In a first aspect, the present application provides a method for constructing a prefabricated ward, which adopts the following technical solutions: Obtain building area information and receive patient information, where the building area information is the area information of the area where the prefabricated ward needs to be constructed, and the received patient information is the patient information that the prefabricated ward needs to receive; Determine the regional environmental information, regional terrain information and regional building information according to the building area information; Construct a regional 3D model according to the regional environmental information, regional terrain information and regional building information; Conduct selection analysis on the regional 3D model based on the received patient information to obtain the target construction location and the target construction plan.
[0008] By adopting the above technical solutions, obtaining the building area information and receiving the patient information are the basis for the construction of the prefabricated ward. The building area information defines the specific location range where the ward is to be constructed, providing a spatial basis for subsequent planning. Receiving the patient information focuses on the needs of the users. The two provide key data support for the subsequent steps, enabling the subsequent operations to be targeted, ensuring that the construction of the prefabricated ward is carried out closely around the actual needs and site conditions, avoiding blind construction caused by information shortage, and laying a solid foundation for the accurate construction of the ward. Determining the regional environmental information, regional terrain information, and regional building information based on the building area information further refines the understanding of the construction area. The regional environmental information helps to understand local conditions such as climate and lighting, so that the ward design can better adapt to the local environment. The regional terrain information clarifies the terrain undulations and other situations, which is of great guiding significance for the foundation construction of the ward. The regional building information can understand the surrounding building layout, facilitating the reasonable planning of the ward location. These information interact with each other, providing comprehensive and accurate data for the subsequent construction of the regional three-dimensional model, making the model more in line with the actual situation. Constructing a regional three-dimensional model based on the regional environmental information, regional terrain information, and regional building information integrates various information and presents it in an intuitive three-dimensional form. The regional environmental information is incorporated into the model to simulate the actual situation of the ward under different environmental conditions; the regional terrain information enables the model to accurately present the terrain features, facilitating the planning of the ward's foundation and basic structure; the regional building information enables the model to reasonably layout the relationship between the ward and the surrounding buildings. This model provides a visual and three-dimensional platform for the subsequent selection and analysis, making the analysis more accurate and efficient, and helping to discover potential problems and solve them in advance. Conducting selection and analysis on the regional three-dimensional model based on the received patient information to obtain the target construction location and the target construction plan. The received patient information reflects the special needs of the patients, such as the characteristics of the disease and the mobility. Analyzing these information on the three-dimensional model can accurately find the most suitable location for constructing the prefabricated ward, which not only meets the convenience of patients' medical treatment but also conforms to the medical process. At the same time, determining the target construction plan according to the patients' needs, such as the internal layout and facility configuration of the ward. This process realizes the organic combination of the patients' needs and the site conditions, and finally obtains a scientific and reasonable target construction location and plan, improving the practicality and pertinence of the prefabricated ward.
[0009] In a possible implementation manner, the constructing a regional three-dimensional model according to the regional environmental information, regional terrain information, and regional building information includes: Determining the central point within the building area according to the building area information, and constructing a regional three-dimensional coordinate with the central point as the origin; Based on the regional terrain information, determining the central terrain coordinate corresponding to the central point, and performing internal and external modeling analysis on the regional terrain information and the central terrain coordinate to obtain a regional terrain model; Determine the topographic location of each building and the building attribute parameters of the building according to the regional building information; Determine the corresponding building coordinate position in the regional topographic model according to the topographic location; Determine the building appearance parameters and the building internal parameters according to the building attribute parameters; Taking the topographic coordinate data of the terrain where the building coordinate position is located as a reference, construct a three-dimensional building model corresponding to the building appearance parameters, and combine the three-dimensional building model with the regional topographic model based on the building coordinate position to obtain a building area model; Sort the regional environmental information in time series to obtain the time-series environmental parameters corresponding to different position nodes in the building area; Map the time-series environmental parameters to the building area model according to the building area position to obtain a regional three-dimensional model.
[0010] In a possible implementation manner, the internal and external modeling analysis of the regional topographic information and the central topographic coordinates to obtain a regional topographic model includes: Distinguish the internal and external boundary terrains in the regional topographic information to obtain an external terrain area and an internal terrain area; Determine the extreme point coordinates and the area midpoint coordinates in the external terrain area according to the central topographic coordinates. The extreme point coordinates represent the highest topographic point coordinates, the lowest topographic point coordinates, and the regional boundary point coordinates in the regional terrain, and the area midpoint coordinates represent the point coordinates in the building area terrain other than the extreme point coordinates; Import the extreme point coordinates into the regional three-dimensional coordinates respectively for regional boundary delineation, determine the internal boundary point cloud coordinates according to the internal terrain area and the central topographic coordinates, and import the internal boundary point cloud coordinates into the regional three-dimensional coordinates for internal area delineation to obtain a regional topographic model.
[0011] In a possible implementation manner, the selection analysis of the regional three-dimensional model based on the received patient information to obtain the target construction location and the target construction plan includes: Determine the patient disease type and the number of patients corresponding to the patient disease type based on the received patient information; Determine whether an isolation ward needs to be set according to the patient disease type. If so, determine the number of isolation wards and the number of non-isolation wards based on the number of patients; Use the number of isolation wards and the number of non-isolation wards as selection conditions to screen the preset ward model library to obtain a set of ward three-dimensional models that meet the selection conditions; Using the patient's disease type as a screening condition to screen the preset disease environment standard, and obtaining the living environment parameters adapted to the patient's disease type; Based on the three-dimensional model of the area, conduct a screenable location screening to obtain at least one ward construction location; Match the living environment parameters with the environmental parameters of the at least one ward construction location, and determine whether there is a construction location that meets the living environment parameters according to the matching result. If there is one, use the ward construction location in the matching result as the target construction location. If there are multiple, use the ward construction location with the largest environmental matching ratio in the matching result as the target construction location; Respectively adapt each ward three-dimensional model in the ward three-dimensional model set to the target construction location, and determine the target ward model whose adaptation degree meets the preset adaptation standard; Conduct a demonstration generation analysis on the target ward model to obtain a target construction plan.
[0012] In a possible implementation manner, the screening of the constructable location based on the three-dimensional model of the area to obtain at least one ward construction location includes: Conduct a terrain area screening on the three-dimensional model of the area to obtain a first area location set; Conduct a building density screening on the first area location set to obtain a second area location set; Conduct a road smoothness and greening degree screening on the second area location set to obtain at least one ward construction location.
[0013] In a possible implementation manner, the determination of whether there is a construction location that meets the living environment parameters according to the matching result further includes: If there is no construction location that meets the living environment parameters in the matching result, determine the target construction location closest to the living environment parameters, and calculate the environmental parameter difference between the environmental parameters corresponding to the target construction location and the living environment parameters; Generate compensation environmental equipment information according to the environmental parameter difference, and bind and update the environmental equipment information with each ward three-dimensional model in the ward three-dimensional model set to obtain an updated ward three-dimensional model set.
[0014] In a second aspect, the present application provides an assembled ward construction system, adopting the following technical solution: An assembled ward construction system includes: An information acquisition module for acquiring building area information and receiving patient information, where the building area information is the area information of the area where the prefabricated ward needs to be constructed, and the received patient information is the patient information that the prefabricated ward needs to receive; An information determination module for determining regional environmental information, regional terrain information, and regional building information based on the building area information; A model construction module for constructing a regional three-dimensional model based on the regional environmental information, regional terrain information, and regional building information; A selection and analysis module for performing selection and analysis on the regional three-dimensional model based on the received patient information to obtain the target construction location and the target construction plan.
[0015] In a possible implementation manner, when the model construction module constructs a regional three-dimensional model according to the regional environmental information, regional terrain information, and regional building information, it specifically is used for: Determining the central point position within the building area according to the building area information, and constructing a regional three-dimensional coordinate with the central point position as the origin; Determining the central terrain coordinate corresponding to the central point position based on the regional terrain information, and performing internal and external modeling analysis on the regional terrain information and the central terrain coordinate to obtain a regional terrain model; Determining the terrain position where each building is located and the building attribute parameters of the building according to the regional building information; Determining the building coordinate position corresponding to the regional terrain model according to the terrain position; Determining the building appearance parameters and the building internal parameters according to the building attribute parameters; Taking the terrain coordinate data of the terrain where the building coordinate position is located as a reference, constructing a building three-dimensional model corresponding to the building appearance parameters, and combining the building three-dimensional model with the regional terrain model based on the building coordinate position to obtain a building area model; Sorting the regional environmental information according to the time series to obtain the time-series environmental parameters corresponding to different position nodes within the building area; Mapping the time-series environmental parameters to the building area model according to the building area position to obtain a regional three-dimensional model.
[0016] In another possible implementation manner, when the model construction module performs internal and external modeling analysis on the regional terrain information and the central terrain coordinate to obtain a regional terrain model, it specifically is used for: Differentiating the internal and external boundary terrains in the regional terrain information to obtain an external terrain area and an internal terrain area; Determine the extreme point coordinates and the midpoint coordinates in the external terrain area according to the central terrain coordinates. The extreme point coordinates represent the highest terrain point coordinates, the lowest terrain point coordinates, and the regional boundary point coordinates in the regional terrain. The midpoint coordinates represent the point coordinates in the building area terrain other than the extreme point coordinates. Import the extreme point coordinates into the regional three-dimensional coordinates respectively for regional boundary delineation. Determine the internal point cloud coordinates according to the internal terrain area and the central terrain coordinates, and import the internal point cloud coordinates into the regional three-dimensional coordinates for internal area delineation to obtain a regional terrain model.
[0017] In another possible implementation, when the selection and analysis module performs selection and analysis on the regional three-dimensional model based on the received patient information to obtain the target construction position and the target construction plan, it specifically is used for: Determine the patient's disease type and the number of patients corresponding to the patient's disease type based on the received patient information; Determine whether an isolation ward needs to be set according to the patient's disease type. If so, determine the number of isolation wards and the number of non-isolation wards based on the number of patients; Use the number of isolation wards and the number of non-isolation wards as selection conditions to screen a preset ward model library to obtain a set of three-dimensional ward models that meet the selection conditions; Use the patient's disease type as a screening condition to screen a preset disease environment standard to obtain living environment parameters adapted to the patient's disease type; Perform a screen of available construction positions based on the regional three-dimensional model to obtain at least one ward construction position; Match the living environment parameters with the environmental parameters of the at least one ward construction position, and determine whether there is a construction position that meets the living environment parameters according to the matching result. If there is one, use the ward construction position in the matching result as the target construction position. If there are multiple, use the ward construction position with the largest environmental matching ratio in the matching result as the target construction position; Adapt each three-dimensional ward model in the set of three-dimensional ward models to the target construction position respectively, and determine a target ward model whose adaptation degree meets the preset adaptation standard; Perform a demonstration generation analysis on the target ward model to obtain a target construction plan.
[0018] In another possible implementation, when the selection and analysis module performs a screen of available construction positions based on the regional three-dimensional model to obtain at least one ward construction position, it specifically is used for: Perform a topographic area screening on the three-dimensional model of the area to obtain a first set of area positions; Perform a screening on the density of buildings in the first set of area positions to obtain a second set of area positions; Perform a screening on the road accessibility and greening degree of the second set of area positions to obtain at least one ward construction position.
[0019] In another possible implementation, the system further includes: a difference calculation module and an environment compensation module, where, The difference calculation module is configured to, when there is no construction position in the matching result that satisfies the living environment parameters, determine a target construction position closest to the living environment parameters, and calculate the environmental parameter difference between the environmental parameters corresponding to the target construction position and the living environment parameters; The environment compensation module is configured to generate compensation environmental equipment information according to the environmental parameter difference, and bind and update the environmental equipment information to each ward three-dimensional model in the ward three-dimensional model set to obtain an updated ward three-dimensional model set.
[0020] In a third aspect, the present application provides an electronic device, adopting the following technical solution: At least one processor; A memory; At least one application program, where at least one application program is stored in the memory and is configured to be executed by at least one processor, and at least one application program is configured to: execute an assembly ward construction method according to any one of the first aspect.
[0021] In a fourth aspect, the present application provides a computer-readable storage medium, adopting the following technical solution: A computer-readable storage medium, on which a computer program is stored, and when the computer program is executed on a computer, the computer is made to execute an assembly ward construction method according to any one of the first aspect.
[0022] In summary, the present application includes at least one of the following beneficial technical effects: By adopting the above technical solutions, obtaining the building area information and receiving the patient information are the basis for the construction of the prefabricated ward. The building area information defines the specific location range where the ward is to be constructed, providing a spatial basis for subsequent planning. Receiving the patient information focuses on the needs of the users. These two aspects provide key data support for the subsequent steps, enabling the subsequent operations to be targeted, ensuring that the construction of the prefabricated ward is carried out closely around the actual needs and site conditions, avoiding blind construction caused by information lack, and laying a solid foundation for the accurate construction of the ward. Determining the regional environmental information, regional terrain information and regional building information based on the building area information further refines the understanding of the construction area. The regional environmental information helps to understand local climate, lighting and other conditions, so that the ward design can better adapt to the local environment. The regional terrain information clarifies the ups and downs of the terrain, which has important guiding significance for the foundation construction of the ward. The regional building information can understand the surrounding building layout, facilitating the reasonable planning of the ward location. These information interact with each other, providing comprehensive and accurate data for the subsequent construction of the regional three-dimensional model, making the model more in line with the reality. Constructing a regional three-dimensional model according to the regional environmental information, regional terrain information and regional building information integrates various information into an intuitive three-dimensional form. Incorporating the regional environmental information into the model can simulate the actual situation of the ward under different environmental conditions; the regional terrain information enables the model to accurately present the terrain features, which is conducive to planning the foundation and basic structure of the ward; the regional building information enables the model to reasonably layout the relationship between the ward and the surrounding buildings. This model provides a visual and three-dimensional platform for the subsequent selection and analysis, making the analysis more accurate and efficient, and helping to discover and solve potential problems in advance. Conducting selection and analysis on the regional three-dimensional model based on the received patient information to obtain the target construction location and target construction plan. The received patient information reflects the special needs of patients, such as the characteristics of the disease, mobility, etc. Analyzing these information on the three-dimensional model can accurately find the most suitable location for constructing the prefabricated ward, which not only meets the convenience of patients' medical treatment but also conforms to the medical process. At the same time, determining the target construction plan according to the patient needs, such as the internal layout of the ward, facility configuration, etc. This process realizes the organic combination of patient needs and site conditions, and finally obtains a scientific and reasonable target construction location and plan, improving the practicality and pertinence of the prefabricated ward. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 FIG. is a schematic flowchart of a method for constructing a prefabricated ward provided by an embodiment of the present application.
[0024] Figure 2 FIG. is a schematic structural diagram of a system for constructing a prefabricated ward provided by an embodiment of the present application.
[0025] Figure 3 FIG. is a schematic structural diagram of an electronic device provided by an embodiment of the present application. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0026] The following will further describe this application in detail with reference to the accompanying Figures 1-3 drawings.
[0027] This specific embodiment is only an interpretation of this application and does not limit this application. After reading this specification, those skilled in the art can make modifications to this embodiment without creative contributions as needed, but as long as it is within the scope of this application, it is protected by the patent law.
[0028] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of this application. Obviously, the described embodiments are some, but not all, of the embodiments of this application. All other embodiments obtained by those of ordinary skill in the art based on the embodiments in this application without making creative efforts fall within the scope of protection of this application.
[0029] In addition, 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 simultaneously, and B exists alone. In addition, the character " / " in this article generally represents an "or" relationship between the associated objects before and after, unless otherwise specified.
[0030] The following will further describe the embodiments of this application in detail with reference to the drawings of the specification.
[0031] The embodiments of this application provide a method for constructing an assembled ward, which is executed by an electronic device. Among them, the electronic device can be an independent physical electronic device, or an electronic device cluster or distributed system composed of multiple physical electronic devices, or a cloud electronic device providing cloud computing services. The embodiments of this application do not limit this here, as Figure 1 shown, this method includes: Step S10, obtaining building area information and receiving patient information.
[0032] Among them, the building area information is the area information of the area where the assembled ward needs to be constructed, and the received patient information is the patient information that the assembled ward needs to receive.
[0033] Specifically, the building area information represents the area information required for constructing the prefabricated ward. It refers to the set of information used to determine the construction location, scope, terrain, and surrounding environment of the prefabricated ward. Such information includes, but is not limited to, the geographical location coordinates of the area, such as longitude and latitude information, through which the location of the area on the map can be accurately positioned; the size of the area, clarifying the land scale available for constructing the prefabricated ward; the surrounding infrastructure conditions, such as whether there are convenient transportation roads for facilitating patient transfer and material transportation, and whether there are water and electricity supply facilities nearby to ensure the normal use of water and electricity after the prefabricated ward is built. For example, in a new development zone of a city, a piece of land with an area of 5,000 square meters is planned for constructing a prefabricated ward. The longitude and latitude of this area are [specific longitude and latitude values], and there are main roads connecting to the urban area nearby, and there is a substation and a waterworks nearby. These detailed information together constitute the building area information. The received patient information is used to represent the patient information required for the prefabricated ward, and it covers various basic conditions of the patients. Specifically, it includes the patient's name for accurately identifying the patient's identity; age, which helps to understand the patient's physical development stage and potential health problems; gender, as there are differences in medical care for different genders; the disease diagnosis result, clarifying the disease the patient suffers from so that the prefabricated ward can make targeted preparations in terms of facility configuration and medical staff arrangement; the expected check-in time, which is convenient for the ward to make bed arrangements and resource allocation in advance. For example, a patient named Zhang San, 35 years old, male, diagnosed with mild COVID-19 infection and expected to check into the prefabricated ward in 3 days, these information are part of the received patient information.
[0034] In the embodiment of the present application, in terms of obtaining the building area information, in the first step, an unmanned aerial vehicle is used to conduct aerial photography of the area to obtain high-definition image data of the area, and information such as the terrain, landform, and building distribution of the area is extracted through image processing technology. In the second step, combined with satellite map data, the obtained information is further verified and supplemented to form comprehensive building area information. In terms of receiving patient information, in the first step, an information sharing platform is established with primary medical institutions and disease prevention and control departments, and patient-reported information is received in real time through a secure network interface. In the second step, a special person is arranged to review and sort out the received information to ensure the accuracy and integrity of the information. For example, check whether information such as the patient's name, age, and disease diagnosis is clear and accurate. In the third step, the sorted patient information is entered into the hospital's information management system and stored classified according to different classification criteria (such as the severity of the disease, the expected check-in time, etc.) for convenient subsequent query and use.
[0035] Step S11: Determine the regional environmental information, regional terrain information, and regional building information according to the building area information.
[0036] Specifically, the regional environmental information is used to represent the natural and social environmental conditions of the building area. The natural environmental information includes climate conditions, such as the annual average temperature, precipitation, wind force level, etc. in this area. These climate factors will affect the performance design of the prefabricated ward, such as heat preservation, waterproofing, and wind resistance; the air quality situation, such as indicators like the concentration of pollutants in the air, which is related to the ventilation system design of the ward and the health of patients; the surrounding ecological conditions, such as whether there are natural landscapes like rivers, lakes, forests, etc., and whether there are pollution sources. The social environmental information covers the surrounding population density. In areas with high population density, more bed settings and more convenient traffic flow lines may need to be considered; the traffic flow. Busy traffic sections may bring noise and air pollution, and sound insulation and air purification measures need to be taken in the ward design; the security situation. A good security environment helps to ensure the safety of patients and medical staff. For example, in a certain building area, the annual average temperature is 15°C, the annual precipitation is 1000 mm, there is a small river flowing nearby, the air quality is excellent, the population density is 5000 people per square kilometer, the traffic flow is moderate, and the security situation is good. These information are part of the regional environmental information. The regional terrain information represents the shape and characteristics of the surface within the building area. It includes the terrain undulation situation, such as whether there are terrains and landforms like mountains, hills, plains, etc. Different terrains will affect the foundation construction method and layout of the prefabricated ward; the slope size. Terrains with larger slopes may require special building structures and construction methods to ensure the stability of the ward; the elevation information, that is, the height of each point relative to a certain reference plane, which is of great significance for the design of the drainage system and the formulation of flood control measures. For example, in a certain building area, part of it is a plain terrain with a small slope and the elevation is between 50 - 60 meters, and another part is a gentle slope terrain with a slope between 10% - 15%. These information constitute the regional terrain information of this area. The regional building information represents the relevant information of the existing buildings and structures within the building area. It includes the distribution of existing buildings, such as the location and spacing of various buildings, which will affect the site selection and layout of the prefabricated ward to avoid mutual interference; the functional uses of the buildings, such as whether there are buildings like factories and warehouses that may generate noise and pollution nearby, and sound insulation and protection measures need to be considered in the ward design; the age and structural type of the buildings. Old buildings may have potential structural safety hazards, and the structural form of new buildings can provide references for the design of prefabricated wards.
[0037] Step S12: Construct a regional three-dimensional model according to the regional environmental information, regional terrain information, and regional building information.
[0038] Specifically, determine the central point in the building area according to the building area information, construct a three-dimensional coordinate system of the area with the central point as the origin, determine the central terrain coordinates corresponding to the central point based on the area terrain information, and perform internal and external modeling analysis on the area terrain information and the central terrain coordinates to obtain an area terrain model. Determine the terrain location of each building and the building attribute parameters of the building according to the area building information. Determine the corresponding building coordinate position in the area terrain model according to the terrain location. Determine the building appearance parameters and the building internal parameters according to the building attribute parameters. Construct a three-dimensional building model corresponding to the building appearance parameters with reference to the terrain coordinate data of the terrain where the building coordinate position is located, and combine the three-dimensional building model with the area terrain model based on the building coordinate position to obtain a building area model. Sort the area environmental information in time series to obtain the time-series environmental parameters corresponding to different position nodes in the building area, and map the time-series environmental parameters into the building area model according to the building area position to obtain a three-dimensional area model.
[0039] Specifically, perform internal and external modeling analysis on the area terrain information and the central terrain coordinates to obtain an area terrain model, including: distinguish the internal and external boundary terrains in the area terrain information to obtain an external terrain area and an internal terrain area. Determine the extreme point coordinates and the area midpoint coordinates in the external terrain area according to the central terrain coordinates. The extreme point coordinates represent the highest terrain point coordinates, the lowest terrain point coordinates, and the area boundary point coordinates in the area terrain, and the area midpoint coordinates represent the point coordinates in the building area terrain other than the extreme point coordinates. Import the extreme point coordinates into the three-dimensional coordinate system of the area for area boundary delineation, determine the internal point cloud coordinates according to the internal terrain area and the central terrain coordinates, and import the internal point cloud coordinates into the three-dimensional coordinate system of the area for internal area delineation to obtain an area terrain model.
[0040] Step S13: Perform selection analysis on the three-dimensional area model based on the received patient information to obtain the target construction position and the target construction plan.
[0041] Specifically, based on the received patient information, determine the patient's disease type and the number of patients corresponding to the patient's disease type. Determine whether an isolation ward needs to be set up according to the patient's disease type. If so, determine the number of isolation wards and the number of non-isolation wards based on the number of patients with the disease. Use the number of isolation wards and the number of non-isolation wards as selection conditions to screen the preset ward model library, and obtain a set of three-dimensional ward models that meet the selection conditions. Use the patient's disease type as a screening condition to screen the preset disease environment standards, obtain the living environment parameters adapted to the patient's disease type, and screen the buildable positions based on the regional three-dimensional model to obtain at least one ward buildable position. Match the living environment parameters with the environmental parameters of at least one ward buildable position, and determine whether there is a buildable position that meets the living environment parameters according to the matching result. If there is one, use the ward buildable position in the matching result as the target construction position. If there are multiple, use the ward buildable position with the largest environmental matching ratio in the matching result as the target construction position. Adapt each three-dimensional ward model in the set of three-dimensional ward models to the target construction position respectively, determine the target ward model whose adaptation degree meets the preset adaptation standard, and perform a demonstration generation analysis on the target ward model to obtain the target construction plan.
[0042] In the embodiment of the present application, screening the buildable positions based on the regional three-dimensional model to obtain at least one ward buildable position includes: screening the terrain area of the regional three-dimensional model to obtain a first set of regional positions, and screening the building density of the first set of regional positions to obtain a second set of regional positions. Screen the second set of regional positions for road accessibility and greening degree to obtain at least one ward buildable position.
[0043] In addition, when there is no buildable position that meets the living environment parameters in the matching result, determine the target buildable position closest to the living environment parameters, and calculate the environmental parameter difference between the environmental parameters corresponding to the target buildable position and the living environment parameters. Generate compensation environmental equipment information according to the environmental parameter difference, and bind and update the environmental equipment information with each three-dimensional ward model in the set of three-dimensional ward models to obtain an updated set of three-dimensional ward models.
[0044] The embodiment of the present application provides a method for constructing a prefabricated ward. Obtaining building area information and receiving patient information are the basis for the entire construction of the prefabricated ward. The building area information clarifies the specific location range where the ward is to be constructed, providing a spatial basis for subsequent planning. Receiving patient information focuses on the needs of the users. The two provide key data support for the subsequent steps, enabling the subsequent operations to be targeted, ensuring that the construction of the prefabricated ward is carried out closely around the actual needs and site conditions, avoiding blind construction caused by information shortage, and laying a solid foundation for the precise construction of the ward. According to the building area information, the regional environmental information, regional terrain information, and regional building information are determined, further refining the understanding of the construction area. The regional environmental information helps to understand local conditions such as climate and lighting, so that the ward design can better adapt to the local environment. The regional terrain information clarifies the terrain undulations and other situations, which has important guiding significance for the basic construction of the ward. The regional building information can understand the surrounding building layout, facilitating the reasonable planning of the ward location. These pieces of information interact with each other, providing comprehensive and accurate data for the subsequent construction of the regional three-dimensional model, making the model more in line with the reality. According to the regional environmental information, regional terrain information, and regional building information, a regional three-dimensional model is constructed, integrating various pieces of information into an intuitive three-dimensional form. The regional environmental information is incorporated into the model, which can simulate the actual situation of the ward under different environmental conditions; the regional terrain information enables the model to accurately present the terrain features, facilitating the planning of the ward's foundation and basic structure; the regional building information enables the model to reasonably layout the relationship between the ward and the surrounding buildings. This model provides a visual and three-dimensional platform for the subsequent selection and analysis, making the analysis more accurate and efficient, and helping to discover potential problems and solve them in advance. Based on the received patient information, the regional three-dimensional model is selected and analyzed to obtain the target construction location and target construction plan. The received patient information reflects the special needs of the patients, such as the disease characteristics and mobility. Analyzing these pieces of information on the three-dimensional model can accurately find the most suitable location for constructing the prefabricated ward, which not only meets the convenience of patients' medical treatment but also conforms to the medical process. At the same time, according to the patients' needs, the target construction plan is determined, such as the internal layout and facility configuration of the ward. This process realizes the organic combination of patients' needs and site conditions, and finally obtains a scientific and reasonable target construction location and plan, improving the practicality and pertinence of the prefabricated ward.
[0045] The following introduces a prefabricated ward construction system provided by the embodiment of the present application. The prefabricated ward construction system described below can be correspondingly referred to the prefabricated ward construction method described above. Please refer to Figure 2 , Figure 2 is a schematic structural diagram of a prefabricated ward construction system 20 provided by the embodiment of the present application, including: An information acquisition module 21, configured to acquire building area information and receive patient information, where the building area information is the area information of the area where the prefabricated ward needs to be constructed, and the received patient information is the patient information that the prefabricated ward needs to receive; An information determination module 22, configured to determine regional environmental information, regional terrain information, and regional building information according to the building area information; A model construction module 23, configured to construct a regional three-dimensional model according to the regional environmental information, regional terrain information, and regional building information; A selection and analysis module 24, configured to perform selection and analysis on the regional three-dimensional model based on the received patient information to obtain a target construction location and a target construction plan.
[0046] In a possible implementation manner of the embodiment of the present application, when the model construction module 23 constructs a regional three-dimensional model according to the regional environmental information, regional terrain information, and regional building information, it is specifically configured to: Determine the central point position within the building area according to the building area information, and construct a regional three-dimensional coordinate with the central point position as the origin; Determine the central terrain coordinates corresponding to the central point position based on the regional terrain information, and perform internal and external modeling analysis on the regional terrain information and the central terrain coordinates to obtain a regional terrain model; Determine the terrain position where each building is located and the building attribute parameters of the building according to the regional building information; Determine the corresponding building coordinate position in the regional terrain model according to the terrain position; Determine the building appearance parameters and the building internal parameters according to the building attribute parameters; Taking the terrain coordinate data of the terrain where the building coordinate position is located as a reference, construct a building three-dimensional model corresponding to the building appearance parameters, and combine the building three-dimensional model with the regional terrain model based on the building coordinate position to obtain a building area model; Sort the regional environmental information according to the time series to obtain the time-series environmental parameters corresponding to different position nodes within the building area; Map the time-series environmental parameters to the building area model according to the building area position to obtain a regional three-dimensional model.
[0047] In another possible implementation manner of the embodiment of the present application, when the model construction module 23 performs internal and external modeling analysis on the regional terrain information and the central terrain coordinates to obtain a regional terrain model, it is specifically configured to: Distinguish the internal and external boundary terrains in the regional terrain information to obtain an external terrain area and an internal terrain area; Determine the coordinates of the extreme point positions and the coordinates of the midpoint positions in the external terrain area according to the central terrain coordinates. The coordinates of the extreme point positions represent the highest terrain point coordinates, the lowest terrain point coordinates, and the coordinates of the regional boundary point positions in the regional terrain. The coordinates of the midpoint positions in the area represent the point coordinates in the terrain of the building area other than the coordinates of the extreme point positions. Import the coordinates of the extreme point positions into the regional three-dimensional coordinates respectively for outlining the regional boundary. Determine the inner point cloud coordinates according to the inner terrain area and the central terrain coordinates, and import the inner point cloud coordinates into the regional three-dimensional coordinates for outlining the internal area, so as to obtain the regional terrain model.
[0048] Another possible implementation manner of the embodiment of the present application. When the selection analysis module 24 performs selection analysis on the regional three-dimensional model based on the received patient information to obtain the target construction position and the target construction plan, it is specifically used for: Determine the patient's disease type and the number of patients corresponding to the patient's disease type based on the received patient information; Determine whether an isolation ward needs to be set according to the patient's disease type. If so, determine the number of isolation wards and the number of non-isolation wards based on the number of patients with the disease; Use the number of isolation wards and the number of non-isolation wards as selection conditions to screen the preset ward model library to obtain a set of three-dimensional ward models that meet the selection conditions; Use the patient's disease type as a screening condition to screen the preset disease environment standard to obtain the living environment parameters adapted to the patient's disease type; Perform a screen of the buildable positions based on the regional three-dimensional model to obtain at least one ward build position; Match the living environment parameters with the environmental parameters of at least one ward build position, and determine whether there is a build position that meets the living environment parameters according to the matching result. If there is and there is only one, use the ward build position in the matching result as the target construction position. If there is and there are multiple, use the ward build position with the largest environmental matching ratio in the matching result as the target construction position; Adapt each three-dimensional ward model in the set of three-dimensional ward models to the target construction position respectively, and determine the target ward model whose adaptation degree meets the preset adaptation standard; Perform a demonstration generation analysis on the target ward model to obtain the target construction plan.
[0049] Another possible implementation manner of the embodiment of the present application. When the selection analysis module 24 performs a screen of the buildable positions based on the regional three-dimensional model to obtain at least one ward build position, it is specifically used for: Perform a terrain area screen on the regional three-dimensional model to obtain the first regional position set; Screen the building density of the first area location set to obtain the second area location set; Screen the road accessibility and greening degree of the second area location set to obtain at least one ward construction location.
[0050] Another possible implementation of the embodiment of the present application, the system 25 further includes: a difference calculation module and an environment compensation module, where, The difference calculation module is used to determine the target construction location closest to the living environment parameters when there is no construction location that meets the living environment parameters in the matching result, and calculate the environmental parameter difference between the environmental parameters corresponding to the target construction location and the living environment parameters; The environment compensation module is used to generate compensation environmental equipment information according to the environmental parameter difference, and bind and update the environmental equipment information with each ward three-dimensional model in the ward three-dimensional model set to obtain the updated ward three-dimensional model set.
[0051] The embodiment of the present application provides an electronic device, such as Figure 3 shown, Figure 3 is a schematic structural diagram of an electronic device provided by an embodiment of the present application, Figure 3 The electronic device 300 shown includes: a processor 301 and a memory 303. Among them, the processor 301 and the memory 303 are connected, such as connected through a bus 302. Optionally, the electronic device 300 may further include a transceiver 304. It should be noted that in practical applications, the transceiver 304 is not limited to one, and the structure of the electronic device 300 does not constitute a limitation to the embodiment of the present application.
[0052] The processor 301 may be a CPU (Central Processing Unit, central processor), a general-purpose processor, a DSP (Digital Signal Processor, data signal processor), an ASIC (Application Specific Integrated Circuit, application-specific integrated circuit), an FPGA (Field Programmable Gate Array, field programmable gate array) or other programmable logic devices, transistor logic devices, hardware components or any combination thereof. It can implement or execute various exemplary logic blocks, modules and circuits described in combination with the disclosed content of the embodiment of the present application. The processor 301 may also be a combination that realizes a computing function, such as a combination including one or more microprocessors, a combination of a DSP and a microprocessor, etc.
[0053] The bus 302 may include a path for transmitting information between the above components. The bus 302 can be a PCI (Peripheral Component Interconnect) bus, an EISA (Extended Industry Standard Architecture) bus, or the like. The bus 302 can be divided into an address bus, a data bus, a control bus, etc. For the sake of simplicity of representation, Figure 3 it is only represented by a thick line in Figure 3 , but it does not mean that there is only one bus or one type of bus.
[0054] The memory 303 can be a ROM (Read Only Memory) or other types of static storage devices that can store static information and instructions, a RAM (Random Access Memory) or other types of dynamic storage devices that can store information and instructions, or it can also be an EEPROM (Electrically Erasable Programmable Read Only Memory), a CD-ROM (Compact Disc Read Only Memory), or other optical disc storage, optical disc storage (including compact discs, laser discs, optical discs, digital versatile discs, Blu-ray discs, etc.), magnetic disk storage media, or other magnetic storage devices, or any other medium that can be used to carry or store the desired program code in the form of instructions or data structures and can be accessed by a computer, but not limited thereto.
[0055] The memory 303 is used to store the application program code for implementing the solution of the embodiment of the present application, and is controlled by the processor 301 to execute. The processor 301 is used to execute the application program code stored in the memory 303 to implement the content shown in the foregoing method embodiment.
[0056] Among them, the electronic device includes but is not limited to: mobile terminals such as mobile phones, laptop computers, digital broadcast receivers, PDAs (Personal Digital Assistants), PADs (Tablet Computers), PMPs (Portable Multimedia Players), vehicle-mounted terminals (such as vehicle-mounted navigation terminals), etc., and fixed terminals such as digital TVs, desktop computers, etc. Figure 3 The electronic device shown is only an example and should not bring any limitations to the functions and usage scopes of the embodiments of the present application.
[0057] Next, a computer-readable storage medium provided by the embodiments of the present application will be introduced. The computer-readable storage medium described below can be correspondingly referred to the method described above.
[0058] An embodiment of the present application provides a computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor, the steps of the above-mentioned prefabricated ward construction method are implemented.
[0059] Since the embodiments of the computer-readable storage medium part correspond to the embodiments of the method part, please refer to the description of the embodiments of the method part for the embodiments of the computer-readable storage medium part.
[0060] It should be understood that although the steps in the flowchart of the accompanying drawings are shown in sequence according to the indication of the arrows, these steps are not necessarily executed in the order indicated by the arrows. Unless otherwise clearly stated in this article, there is no strict order restriction for the execution of these steps, and they can be executed in other orders. Moreover, at least a part of the steps in the flowchart of the accompanying drawings may include multiple sub-steps or multiple stages. These sub-steps or stages are not necessarily executed at the same time, but can be executed at different times, and their execution order is not necessarily sequential, but can be executed alternately or alternately with at least a part of other steps or sub-steps or stages of other steps.
[0061] The above are only partial embodiments of the present application. It should be noted that for those of ordinary skill in the art, without departing from the principle of the present application, several improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present application.
Claims
1. A method for constructing an assembled ward, characterized in that, Including: Obtaining building area information and receiving patient information, where the building area information is the area information of the area where the prefabricated ward needs to be constructed, and the received patient information is the patient information that the prefabricated ward needs to receive; Determining regional environmental information, regional terrain information, and regional building information according to the building area information; Constructing a regional three-dimensional model according to the regional environmental information, regional terrain information, and regional building information; Performing selection analysis on the regional three-dimensional model based on the received patient information to obtain the target construction location and the target construction plan.
2. The construction method of a prefabricated ward according to claim 1, characterized in that The constructing a regional three-dimensional model according to the regional environmental information, regional terrain information, and regional building information includes: Determining the central point position within the building area according to the building area information, and constructing a regional three-dimensional coordinate with the central point position as the origin; Determining the central terrain coordinate corresponding to the central point position based on the regional terrain information, and performing internal and external modeling analysis on the regional terrain information and the central terrain coordinate to obtain a regional terrain model; Determining the terrain location where each building is located and the building attribute parameters of the building according to the regional building information; Determining the building coordinate position corresponding to the building in the regional terrain model according to the terrain location; Determining the building appearance parameters and the building internal parameters according to the building attribute parameters; Constructing a building three-dimensional model corresponding to the building appearance parameters with reference to the terrain coordinate data of the terrain where the building coordinate position is located, and combining the building three-dimensional model with the regional terrain model based on the building coordinate position to obtain a building area model; Sorting the regional environmental information according to the time series to obtain the time-series environmental parameters corresponding to different position nodes within the building area; Mapping the time-series environmental parameters to the building area model according to the building area position to obtain a regional three-dimensional model.
3. The method for constructing a prefabricated ward according to claim 2, wherein, The performing internal and external modeling analysis on the regional terrain information and the central terrain coordinate to obtain a regional terrain model includes: Distinguishing the internal and external boundary terrains in the regional terrain information to obtain an external terrain area and an internal terrain area; Determining the extreme point coordinates and the area center point coordinates in the external terrain area according to the central terrain coordinate, where the extreme point coordinates represent the highest terrain point coordinates, the lowest terrain point coordinates, and the regional boundary point coordinates in the regional terrain, and the area center point coordinates represent the point coordinates in the building area terrain except the extreme point coordinates; Importing the extreme point coordinates into the regional three-dimensional coordinate respectively for regional boundary outlining, determining the internal boundary point cloud coordinates according to the internal terrain area and the central terrain coordinate, and importing the internal boundary point cloud coordinates into the regional three-dimensional coordinate for internal area outlining to obtain a regional terrain model.
4. A method for constructing a prefabricated ward according to claim 3, characterized in that, The performing selection analysis on the regional three-dimensional model based on the received patient information to obtain the target construction location and the target construction plan includes: Determining the patient disease type and the number of patients corresponding to the patient disease type based on the received patient information; Determine whether an isolation ward needs to be set according to the type of the patient's illness. If so, determine the number of isolation wards and the number of non-isolation wards based on the number of patients with the illness; Use the number of isolation wards and the number of non-isolation wards as selection conditions to screen a preset ward model library, and obtain a set of three-dimensional ward models that meet the selection conditions; Use the type of the patient's illness as a screening condition to screen a preset illness environment standard, and obtain living environment parameters adapted to the type of the patient's illness; Based on the three-dimensional model of the area, screen for constructible locations, and obtain at least one ward construction location; Match the living environment parameters with the environmental parameters of the at least one ward construction location, and determine whether there is a construction location that meets the living environment parameters according to the matching result. If there is one, use the ward construction location in the matching result as the target construction location. If there are multiple, use the ward construction location with the largest environmental matching ratio in the matching result as the target construction location; Respectively adapt each three-dimensional ward model in the set of three-dimensional ward models to the target construction location, and determine a target ward model whose adaptability meets the preset adaptation standard; Conduct a demonstration and generation analysis on the target ward model to obtain a target construction plan.
5. A method for constructing a prefabricated ward according to claim 4, characterized in that The screening for constructible locations based on the three-dimensional model of the area to obtain at least one ward construction location includes: Conduct a terrain area screening on the three-dimensional model of the area to obtain a first set of area locations; Conduct a building density screening on the first set of area locations to obtain a second set of area locations; Conduct a screening on the second set of area locations for road smoothness and greening degree to obtain at least one ward construction location.
6. A method for constructing an assembled ward according to claim 4, characterized in that The determination of whether there is a construction location that meets the living environment parameters according to the matching result further includes: If there is no construction location that meets the living environment parameters in the matching result, determine the target construction location closest to the living environment parameters, and calculate the difference between the environmental parameters corresponding to the target construction location and the environmental parameters of the living environment parameters; Generate compensation environmental equipment information according to the environmental parameter difference, and bind and update the environmental equipment information with each three-dimensional ward model in the set of three-dimensional ward models to obtain an updated set of three-dimensional ward models.
7. An assembled ward construction system, characterized in that, It includes: An information acquisition module, configured to acquire building area information and receive patient information. The building area information is the area information of the area where the prefabricated ward needs to be constructed, and the received patient information is the patient information that the prefabricated ward needs to receive; An information determination module, configured to determine area environmental information, area terrain information, and area building information according to the building area information; A model construction module, configured to construct a three-dimensional model of the area according to the area environmental information, area terrain information, and area building information; A selection and analysis module, configured to conduct a selection and analysis on the three-dimensional model of the area based on the received patient information to obtain a target construction location and a target construction plan.
8. The prefabricated ward construction system according to claim 7, characterized in that When constructing a regional three-dimensional model based on the regional environmental information, regional terrain information, and regional building information, the model construction module is specifically configured to: Determine the central point within the building area according to the building area information, and construct a regional three-dimensional coordinate with the central point as the origin; Based on the regional terrain information, determine the central terrain coordinate corresponding to the central point, and perform internal and external modeling analysis on the regional terrain information and the central terrain coordinate to obtain a regional terrain model; Determine the terrain location of each building and the building attribute parameters of the building according to the regional building information; Determine the corresponding building coordinate position in the regional terrain model according to the terrain location; Determine the building appearance parameters and the internal parameters of the building according to the building attribute parameters; With reference to the terrain coordinate data of the terrain where the building coordinate position is located, construct a building three-dimensional model corresponding to the building appearance parameters, and combine the building three-dimensional model with the regional terrain model based on the building coordinate position to obtain a building area model; Sort the regional environmental information according to the time series to obtain the time-series environmental parameters corresponding to different position nodes within the building area; Map the time-series environmental parameters to the building area model according to the building area position to obtain a regional three-dimensional model.
9. An electronic device, characterized in that, The electronic device includes: At least one processor; A memory; At least one application program, wherein the at least one application program is stored in the memory and configured to be executed by at least one processor, and the at least one application program is configured to: execute an assembly ward construction method according to any one of claims 1-6.
10. A computer-readable storage medium, characterized in that, Including: A computer program stored with an assembly ward construction method that can be loaded and executed by a processor according to any one of claims 1-6.
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