A method and system for operating room panel construction
Patent Information
- Application Number
- CN202211316253.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-10-26
- Publication Date
- 2026-09-04
- Estimated Expiration
- 2042-10-26
AI Technical Summary
[0002]现有技术中,手术室墙面、顶面仍普遍使用传统的施工方法,即先进行龙骨施工,再进行面板安装,因现场作业环境相对较差,且施工人员水平良莠不齐,经常出现施工质量差导致的返工情况,造成成本浪费,工期延误
[0036] This invention introduces BIM modeling and component factory prefabrication technology, which can automatically generate panel construction plans to support the factory to complete the prefabrication of wall and ceiling panels. There is no need to install the base keel, and the panels can be directly assembled on site, simplifying the on-site installation process of the operating room, optimizing the construction technology, and greatly improving the construction speed and quality of the operating room.
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Figure CN115795596B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of building construction technology, and more specifically, to a method and system for constructing operating room panels. Background Technology
[0002] In the current technology, the walls and ceilings of operating rooms still generally use traditional construction methods, that is, the keel is constructed first and then the panels are installed. Due to the relatively poor on-site working environment and the uneven skill level of construction personnel, rework often occurs due to poor construction quality, resulting in cost waste and construction delays. Summary of the Invention
[0003] In order to at least solve the technical problems existing in the background art, the present invention provides an operating room panel construction method, system, electronic device and computer storage medium.
[0004] The first aspect of the present invention provides a method for constructing an operating room panel, comprising the following steps:
[0005] Acquire on-site data of the operating room, and determine the basic structural data of the operating room based on the on-site data;
[0006] A BIM model is generated based on the basic structural data, and a panel construction plan is generated based on the BIM model and preset rules.
[0007] The panels are prefabricated and installed according to the panel construction plan.
[0008] Furthermore, the acquisition of on-site data of the operating room, and the determination of the basic structural data of the operating room based on the on-site data, includes:
[0009] Receive the scanning data of the operating room, the scanning data including the position data of the first inner wall, the material data of the first inner wall, and the size data of the first inner wall;
[0010] The infrastructure data is generated based on the scan data.
[0011] Further, the step of generating a BIM model based on the infrastructure data includes:
[0012] Input the basic structure data into the BIM model generator;
[0013] The BIM model generator generates an initial BIM model based on the inner wall location data and the inner wall dimension data;
[0014] The BIM model generator then associates the inner wall material data with the corresponding inner wall sub-blocks to obtain the BIM model.
[0015] The BIM model includes the location data of the second inner wall, the material data of the second inner wall, and the size data of the second inner wall.
[0016] Furthermore, the step of generating a panel construction plan based on the BIM model and preset rules includes:
[0017] The inner wall sub-blocks are aggregated based on the second inner wall position data, the second inner wall material data, and the second inner wall size data to obtain the corrected inner wall sub-blocks; wherein the corrected inner wall sub-blocks correspond to the third inner wall position data, the third inner wall material data, and the third inner wall size data.
[0018] Based on the third inner wall position data, third inner wall material data, third inner wall size data, and preset rules corresponding to each modified inner wall sub-block, determine the panel construction sub-scheme for each modified inner wall sub-block;
[0019] The various panel construction sub-schemes are merged to obtain a first panel construction scheme, and the first panel construction scheme is used as the panel construction scheme.
[0020] Furthermore, the method also includes: determining the equipment attribute data of the operating room based on the on-site data;
[0021] The step of generating a panel construction plan based on the BIM model and preset rules includes:
[0022] Determine the correction scheme based on the device attribute data;
[0023] The first panel construction plan is modified according to the modification scheme to obtain a second panel construction plan, and the second panel construction plan is used as the panel construction plan.
[0024] Further, determining the correction scheme based on the device attribute data includes:
[0025] The correction scheme is determined based on the purpose attribute value of the operating room according to the equipment attribute data;
[0026] The usage attribute value is positively correlated with the correction scheme.
[0027] Furthermore, prior to the prefabrication of the panel according to the panel construction plan, the process also includes:
[0028] The panel construction plan is output to the staff for review, and after confirmation, the panel construction plan is output for execution.
[0029] A second aspect of the present invention provides an operating room panel construction system, comprising an acquisition module, a processing module, and a storage module, wherein the processing module is connected to the acquisition module and the storage module; wherein,
[0030] The storage module is used to store executable computer program code;
[0031] The acquisition module is used to acquire relevant data from the operating room and transmit it to the processing module;
[0032] The processing module is configured to execute the method described in the preceding one by invoking the executable computer program code in the storage module.
[0033] A third aspect of the present invention provides an electronic device comprising: a memory storing executable program code; a processor coupled to the memory; the processor invoking the executable program code stored in the memory to perform the method as described in any of the preceding claims.
[0034] A fourth aspect of the present invention provides a computer storage medium storing a computer program that, when executed by a processor, performs the method described in any of the preceding claims.
[0035] The beneficial effects of the technical solution of this invention are as follows:
[0036] This invention introduces BIM modeling and component factory prefabrication technology, which can automatically generate panel construction plans to support the factory to complete the prefabrication of wall and ceiling panels. There is no need to install the base keel, and the panels can be directly assembled on site, simplifying the on-site installation process of the operating room, optimizing the construction technology, and greatly improving the construction speed and quality of the operating room. Attached Figure Description
[0037] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of the present invention and should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0038] Figure 1 This is a schematic flowchart of an operating room panel construction method disclosed in an embodiment of the present invention;
[0039] Figure 2 This is a schematic diagram of the generated BIM model disclosed in the embodiments of the present invention;
[0040] Figure 3 This is a schematic diagram of some data involved in the panel construction scheme generated according to an embodiment of the present invention;
[0041] Figure 4 This is a schematic diagram of the structure of an operating room panel construction system disclosed in an embodiment of the present invention;
[0042] Figure 5 This is a schematic diagram of the structure of an electronic device disclosed in an embodiment of the present invention. Detailed Implementation
[0043] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0044] The terms "first, second, third, etc." or similar terms such as module A, module B, module C, etc., used in the specification and claims are only used to distinguish similar objects and do not represent a specific ordering of objects. It is understood that a specific order or sequence may be interchanged where permitted so that the embodiments of the invention described herein can be implemented in an order other than that illustrated or described herein.
[0045] In the following description, the labels of the steps, such as S110, S120, etc., do not necessarily mean that the steps will be executed in this way. The order of the steps can be interchanged or executed simultaneously if permitted.
[0046] The term "comprising" as used in the specification and claims should not be construed as limiting itself to what follows; it does not exclude other elements or steps. Therefore, it should be interpreted as specifying the presence of the mentioned feature, integral, step, or component, but does not exclude the presence or addition of one or more other features, integrals, steps, or components, or groups thereof. Thus, the statement "device comprising means A and B" should not be limited to a device consisting solely of components A and B.
[0047] The term "an embodiment" or "an embodiment" as used in this specification means that a particular feature, structure, or characteristic described in conjunction with that embodiment is included in at least one embodiment of the invention. Therefore, the terms "in one embodiment" or "in an embodiment" appearing throughout this specification do not necessarily refer to the same embodiment, but may refer to the same embodiment. Furthermore, in one or more embodiments, the particular features, structures, or characteristics can be combined in any suitable manner, as will be apparent to those skilled in the art from this disclosure.
[0048] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. In case of any inconsistency, the meaning set forth in this specification or derived from the content described herein shall prevail. Furthermore, the terminology used herein is for the purpose of describing embodiments of the invention only and is not intended to limit the invention.
[0049] Please see Figure 1 , Figure 1 This is a flowchart illustrating a method for constructing operating room panels according to an embodiment of the present invention. The method for constructing operating room panels according to an embodiment of the present invention includes the following steps:
[0050] Acquire on-site data of the operating room, and determine the basic structural data of the operating room based on the on-site data;
[0051] A BIM model is generated based on the basic structural data, and a panel construction plan is generated based on the BIM model and preset rules.
[0052] The panels are prefabricated and installed according to the panel construction plan.
[0053] In this embodiment of the invention, compared with the prior art, the present invention introduces BIM technology into the construction of operating room interior wall panels. Specifically, the basic structural data of the operating room is first obtained, and then input into BIM software to quickly generate a personalized BIM model. At the same time, combined with preset rules, a panel construction plan can be generated. The panel construction plan is then transmitted to the corresponding panel prefabrication production machine to obtain customized panels. Thus, construction workers can quickly assemble and install them on site.
[0054] It should be noted that the solution of this invention can be implemented in a dedicated processing unit, such as a computing device or a server. The computing device can be a computer, mobile phone, tablet computer, wearable device, virtual reality device, augmented reality device, etc., while the server can be a standalone physical server, a server cluster or distributed system composed of multiple physical servers, or a cloud server providing basic cloud computing services such as cloud services, cloud databases, cloud computing, cloud functions, cloud storage, network services, cloud communication, middleware services, domain name services, security services, CDN, and big data and artificial intelligence platforms. As a specific implementation, the processing unit can be integrated with the panel prefabrication production machine components into a complete system, placing both in the same production area and maintaining a communication connection, thereby further improving the efficiency of panel prefabrication production.
[0055] Furthermore, the acquisition of on-site data of the operating room, and the determination of the basic structural data of the operating room based on the on-site data, includes:
[0056] Receive the scanning data of the operating room, the scanning data including the position data of the first inner wall, the material data of the first inner wall, and the size data of the first inner wall;
[0057] The infrastructure data is generated based on the scan data.
[0058] In this step, the on-site data can be scanned data obtained by scanning the interior walls of the operating room. For example, staff go to the operating room to be constructed and use scanning equipment to perform a comprehensive scan of the interior space. During this process, the corresponding interior wall location data, interior wall material data, and interior wall dimension data can be entered automatically and / or manually. After obtaining this scanned data, the backend processing unit can generate basic structural data, that is, it has mastered the internal structural data of the operating room to be constructed, and based on this, it can generate a BIM model of the operating room.
[0059] The scanning device can be a mobile terminal or other professional equipment, which can acquire scanning data through image recognition, laser / ultrasound / radar scanning technology, etc. Specific details will not be elaborated.
[0060] Further, the step of generating a BIM model based on the infrastructure data includes:
[0061] Input the basic structure data into the BIM model generator;
[0062] The BIM model generator generates an initial BIM model based on the inner wall location data and the inner wall dimension data;
[0063] The BIM model generator then associates the inner wall material data with the corresponding inner wall sub-blocks to obtain the BIM model.
[0064] The BIM model includes the location data of the second inner wall, the material data of the second inner wall, and the size data of the second inner wall.
[0065] In this step, refer to Figure 2 As shown, this invention utilizes a BIM model generator to process basic structural data. Specifically, the scanned data includes the location, material, and dimension data of each inner wall sub-block. First, an initial BIM model, i.e., the basic framework of the operating room's interior wall, is generated based on the location and dimension data. Then, the corresponding material data is filled into the corresponding sub-blocks to obtain the final BIM model. Correspondingly, the inner wall location data, inner wall material data, and inner wall dimension data are also converted accordingly.
[0066] The BIM model generator involved in this invention can be a dedicated BIM generation software that communicates and interacts with the processing mechanism of this invention; alternatively, a BIM generation program with a small amount of captured data can be integrated into the processing mechanism of this invention, which can reduce the communication cost of the processing mechanism of this invention and effectively improve the processing efficiency.
[0067] Furthermore, the step of generating a panel construction plan based on the BIM model and preset rules includes:
[0068] The inner wall sub-blocks are aggregated based on the second inner wall position data, the second inner wall material data, and the second inner wall size data to obtain the corrected inner wall sub-blocks; wherein the corrected inner wall sub-blocks correspond to the third inner wall position data, the third inner wall material data, and the third inner wall size data.
[0069] Based on the third inner wall position data, third inner wall material data, third inner wall size data, and preset rules corresponding to each modified inner wall sub-block, determine the panel construction sub-scheme for each modified inner wall sub-block;
[0070] The various panel construction sub-schemes are merged to obtain a first panel construction scheme, and the first panel construction scheme is used as the panel construction scheme.
[0071] In this step, the relevant structural data of each sub-block of the inner wall already included in the BIM model are first aggregated. The purpose of this aggregation is to merge sub-blocks that have physical partitions. For example, there may be a narrow groove between sub-blocks A and B, but this groove will be covered by the panel during construction; therefore, sub-blocks A and B can be considered as one sub-block. After aggregation, specific panel construction sub-schemes can be determined based on factors such as the location, material, and size of each sub-block, referring to... Figure 3 As shown, the panel construction sub-scheme may include the size of a single panel, the installation and fixing method and the parameters of the fixing device (determined based on the inner wall material), the data of electrical equipment connection devices (such as various sockets and lamps), the location and connection relationship of pipes, etc.
[0072] It should be noted that the preset rules can be manually set in advance. For example, they may include a table of panel size and space size, panel material selection specifications, basic principles for the number and location of sockets, etc., which will not be elaborated on in detail.
[0073] In addition, the integration of the various panel construction sub-schemes mainly involves the transition treatment of the joint parts of each sub-block, that is, the treatment of panel alignment, electrical equipment conflict resolution, etc.
[0074] Furthermore, the method also includes: determining the equipment attribute data of the operating room based on the on-site data;
[0075] The step of generating a panel construction plan based on the BIM model and preset rules includes:
[0076] Determine the correction scheme based on the device attribute data;
[0077] The first panel construction plan is modified according to the modification scheme to obtain a second panel construction plan, and the second panel construction plan is used as the panel construction plan.
[0078] In this step, the acquired field data may also include equipment attribute data for the operating room (which can be manually added). Therefore, the rationality of the first panel construction plan can be evaluated based on the equipment that needs to be installed in the operating room, and then local modifications and adjustments can be made to obtain the second panel construction plan.
[0079] For example:
[0080] Through communication with relevant personnel in the operating room to be constructed, the staff determined that a large piece of equipment needed to be installed in the room. Based on the obtained attribute data of this large piece of equipment, the processing agency could determine that the operating room would be used for large and complex surgeries. Accordingly, the initial panel construction plan could be significantly adjusted. For example, it might be determined that operating room partitions (to divide the operating room into different sections) are needed, and additional panels would be installed on these partitions. The positions of electrical outlets, the installation locations of lighting fixtures, and even the number of fixtures could be adjusted accordingly. However, if the equipment attribute data indicates that the operating room is only intended for minor surgeries, then only minor adjustments to the installation locations of electrical outlets and lighting fixtures can be made based on the size of the surgical equipment and its electrical requirements.
[0081] It should be noted that a multivariate comparison table of the size, type and other attribute data of the operating room equipment and the correction scheme can be established in advance. The corresponding correction scheme can be determined by looking up the table. The correction scheme can at least include the expansion / reduction coefficient of the position (up and down, left and right) of the panel, socket, light fixture, etc. (compared to the position of the operating room equipment), and can also include special requirements such as the setting of partitions mentioned above.
[0082] Further, determining the correction scheme based on the device attribute data includes:
[0083] The correction scheme is determined based on the purpose attribute value of the operating room according to the equipment attribute data;
[0084] The usage attribute value is positively correlated with the correction scheme.
[0085] In this step, compared to the aforementioned multivariate comparison table of pre-established operating room equipment attribute data such as size and category and correction schemes, this embodiment can quantify the relevant correction data regarding the degree of adjustment of location, quantity, etc. involved in the correction scheme. Specifically, the purpose attribute value of the operating room is determined based on the equipment attribute data. The more the operating room is used for large-scale surgeries, the more equipment used in the surgical process, the more expensive it is, and the larger its size, the higher the corresponding purpose attribute value. The purpose attribute value is positively correlated with the correction scheme. That is, the location and quantity of sockets, lights, etc. on the panel are determined by the purpose of the operating room, thereby providing more convenience for the installation and layout of surgical equipment involved in higher-purpose operating rooms.
[0086] It should be noted that big data statistical analysis can be used to determine the types of surgical equipment involved in each type of operating room, as well as the general size data and electrical requirements data of these devices, thereby determining an accurate positive correlation between the usage attribute values and the correction scheme.
[0087] Furthermore, prior to the prefabrication of the panel according to the panel construction plan, the process also includes:
[0088] The panel construction plan is output to the staff for review, and after confirmation, the panel construction plan is output for execution.
[0089] In this step, to avoid economic losses caused by errors in the scheme, the scheme of the present invention can only be used to assist manual design. That is, the automatically generated panel construction scheme is sent to the staff for review, and corresponding modifications are made if necessary. After obtaining confirmation feedback, the panel construction scheme is sent to the panel prefabrication production machine or the workers in the construction workshop for panel production.
[0090] Please see Figure 4 , Figure 4 This is a structural schematic diagram of an operating room panel construction system disclosed in an embodiment of the present invention. Figure 4 As shown, an operating room panel construction system according to an embodiment of the present invention includes an acquisition module (101), a processing module (102), and a storage module (103), wherein the processing module (102) is connected to the acquisition module (101) and the storage module (103); wherein,
[0091] The storage module (103) is used to store executable computer program code;
[0092] The acquisition module (101) is used to acquire relevant data from the operating room and transmit it to the processing module (102);
[0093] The processing module (103) is used to execute the method described in Embodiment 1 by calling the executable computer program code in the storage module (104).
[0094] The specific functions of the operating room panel construction system in this embodiment are the same as those in Embodiment 1 above. Since the system in this embodiment adopts all the technical solutions of the above embodiments, it has at least all the beneficial effects brought about by the technical solutions of the above embodiments, which will not be described in detail here.
[0095] Please see Figure 5 , Figure 5 This invention discloses an electronic device comprising: a memory storing executable program code; a processor coupled to the memory; the processor calling the executable program code stored in the memory to execute the method described in the above embodiments.
[0096] This invention also discloses a computer storage medium storing a computer program, which is executed by a processor as described in Embodiment 1.
[0097] The apparatus according to embodiments of this disclosure may include a processor, memory for storing and executing program data, permanent memory such as a disk drive, a communication port for processing communication with external devices, and a user interface device, etc. The method is implemented as a software module or may be stored on a computer-readable recording medium as computer-readable code or program instructions executable by a processor. Examples of computer-readable recording media may include magnetic storage media (e.g., read-only memory (ROM), random access memory (RAM), floppy disk, hard disk, etc.), optical reading media (e.g., CD-ROM, DVD, etc.). The computer-readable recording medium may be distributed across computer systems connected to a network, and the computer-readable code may be stored and executed in a distributed manner. The medium may be computer-readable, stored in memory, and executed by a processor.
[0098] Embodiments of this disclosure can be designated as functional block components and various processing operations. Functional blocks can be implemented as various numbers of hardware and / or software components that perform specific functions. For example, embodiments of this disclosure can implement direct circuit components, such as memories, processing circuits, logic circuits, lookup tables, etc., that can perform various functions under the control of one or more microprocessors or other control devices. Components of this disclosure can be implemented by software programming or software components. Similarly, embodiments of this disclosure can include various algorithms implemented by combinations of data structures, procedures, routines, or other programming components, and can be implemented by programming or scripting languages (such as C, C++, Java, assembler, etc.). Functional aspects can be implemented by algorithms executed by one or more processors. Furthermore, embodiments of this disclosure can implement related techniques for electronic environment setup, signal processing, and / or data processing. Terms such as “mechanism,” “element,” “unit,” etc., can be used broadly and are not limited to mechanical and physical components. These terms can refer to a series of software routines associated with processors, etc.
[0099] Specific embodiments are described in this disclosure as examples, and the scope of the embodiments is not limited thereto.
[0100] While embodiments of this disclosure have been described, those skilled in the art will understand that various changes in form and detail may be made therein without departing from the spirit and scope of this disclosure as defined by the appended claims. Therefore, the above embodiments of this disclosure should be interpreted as exemplary and are not limiting in any way. For example, each component described as a single unit may be executed in a distributed manner, and similarly, components described as distributed may be executed in a combined manner.
[0101] All examples or example terms (e.g., etc.) used in the embodiments of this disclosure are for the purpose of describing embodiments of this disclosure and are not intended to limit the scope of embodiments of this disclosure.
[0102] Furthermore, unless otherwise explicitly stated, expressions such as “necessary” or “important” associated with certain components do not necessarily indicate that the components are absolutely necessary.
[0103] Those skilled in the art will understand that embodiments of this disclosure may be implemented in modified forms without departing from the spirit and scope of this disclosure.
[0104] Because this disclosure allows for various changes to the embodiments thereof, it is not limited to the specific embodiments described herein, and it will be understood that all changes, equivalents, and alternatives that do not depart from the spirit and scope of this disclosure are included herein. Therefore, the embodiments of this disclosure described herein should be understood as illustrative in all respects and should not be construed as limiting.
[0105] In addition, terms such as “unit” and “module” refer to a unit that can be implemented as hardware or software or a combination of hardware and software to process at least one function or operation.
[0106] "Units" and "modules" can be stored in the storage medium to be addressed and can be implemented as programs that can be executed by a processor.
[0107] For example, "unit" and "module" can refer to components such as software components, object-oriented software components, class components, and task components, and can include processes, functions, attributes, procedures, subroutines, program code segments, drivers, firmware, microcode, circuits, data, databases, data structures, tables, arrays, or variables.
[0108] In this disclosure, the statement “A may include one of a1, a2 and a3” can broadly mean that examples that can be included in element A include a1, a2 or a3.
[0109] This statement should not be interpreted as limiting the meaning of examples included in element A to a1, a2, and a3. Therefore, examples included in element A should not be interpreted as excluding elements other than a1, a2, and a3.
[0110] Furthermore, this statement indicates that element A may include a1, a2, or a3. This statement does not imply that the elements included in element A must be selected from a specific set of features. That is, this statement should not be construed as implying that a1, a2, or a3 must be selected from a set that includes a1, a2, and a3 to be included in element A.
[0111] Furthermore, in this disclosure, the expression "at least one of a1, a2 and / or a3" means one of "a1", "a2", "a3", "a1 and a2", "a1 and a3", "a2 and a3", and "a1, a2 and a3". Therefore, it should be noted that unless explicitly described as "at least one of a1, at least one of a2, and at least one of a3", the expression "at least one of a1, a2 and / or a3" should not be interpreted as "at least one of a1", "at least one of a2", and "at least one of a3".
Claims
1. A method for constructing operating room panels, characterized in that, Includes the following steps: Acquire on-site data of the operating room, and determine the basic structural data of the operating room based on the on-site data; A BIM model is generated based on the basic structural data, and a panel construction plan is generated based on the BIM model and preset rules. Prefabrication and installation of panels shall be carried out in accordance with the panel construction plan; The process of acquiring on-site data of the operating room and determining the basic structural data of the operating room based on the on-site data includes: Receive scan data from the operating room, the scan data including first inner wall position data, first inner wall material data, and first inner wall dimension data; generate the basic structure data based on the scan data; The step of generating a BIM model based on the infrastructure data includes: The basic structure data is input into the BIM model generator; the BIM model generator generates an initial BIM model based on the first inner wall location data and the first inner wall size data; the BIM model generator then associates the first inner wall material data with the corresponding inner wall sub-blocks to obtain the BIM model; wherein, the BIM model includes second inner wall location data, second inner wall material data, and second inner wall size data; The step of generating a panel construction plan based on the BIM model and preset rules includes: The inner wall sub-blocks are aggregated based on the second inner wall position data, the second inner wall material data, and the second inner wall size data to obtain corrected inner wall sub-blocks. The purpose of this aggregation process is to merge some sub-blocks that have physical partitions. The corrected inner wall sub-blocks correspond to the third inner wall position data, the third inner wall material data, and the third inner wall size data. Based on the third inner wall position data, third inner wall material data, third inner wall size data, and preset rules corresponding to each modified inner wall sub-block, determine the panel construction sub-scheme for each modified inner wall sub-block; The various panel construction sub-schemes are merged to obtain a first panel construction scheme, and the first panel construction scheme is used as the panel construction scheme. The method further includes: determining the equipment attribute data of the operating room based on the site data; then, generating the panel construction plan based on the BIM model and preset rules includes: A correction scheme is determined based on the equipment attribute data; the first panel construction scheme is corrected according to the correction scheme to obtain a second panel construction scheme, and the second panel construction scheme is used as the panel construction scheme. The step of determining the correction scheme based on the equipment attribute data includes: determining the correction scheme based on the usage attribute value of the operating room in the equipment attribute data; wherein the usage attribute value is positively correlated with the correction scheme.
2. The method for constructing an operating room panel according to claim 1, characterized in that: Before the panel prefabrication production is carried out according to the panel construction plan, the method further includes: outputting the panel construction plan to the staff for review, and outputting the panel construction plan for execution after obtaining confirmation.
3. An operating room panel construction system, comprising an acquisition module, a processing module, and a storage module, wherein the processing module is connected to the acquisition module and the storage module; wherein, The storage module is used to store executable computer program code; the acquisition module is used to acquire relevant data from the operating room and transmit it to the processing module; characterized in that: the processing module is used to execute the method as described in claim 1 or 2 by calling the executable computer program code in the storage module.
4. An electronic device, comprising: Memory containing executable program code; A processor coupled to the memory; characterized in that: the processor calls the executable program code stored in the memory to execute the method as described in claim 1 or 2.
5. A computer storage medium storing a computer program, characterized in that: The computer program is executed by the processor to perform the method as described in claim 1 or 2.
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