Water collection well deployment method, apparatus, device, and storage medium

CN115455520BActive Publication Date: 2026-08-18HEFEI LIANGZHEN CONSTR TECH CO LTD
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Patent Information

Application Number
CN202210774633.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-07-01
Publication Date
2026-08-18
Estimated Expiration
2042-07-01

AI Technical Summary

Technical Problem

[0004]本发明的主要目的在于解决现在的集水井的设计效率较低的问题

Benefits of technology

[0023]The technical solution provided by this invention involves acquiring plan drawings and reference functional blocks related to the collection well in a drainage system, and extracting graphic element information from the plan drawings. Based on the graphic element information, the outline position of the collection well is identified, and multiple first functional components are constructed on the outline position of the collection well based on the reference functional blocks. Relative position detection is performed on the collection well outline between the constructed first functional components and between each first functional component and the reference functional block to obtain detection results. Based on the detection results, first functional components or reference functional blocks that do not meet the preset position conditions are adjusted to obtain the collection well components. Compared with the prior art, this application extracts graphic element information from the corresponding drawings, and then generates functional components with corresponding positions and sizes on the corresponding reference functional blocks based on the graphic element information. The generated functional components are then adjusted to obtain a collection well that conforms to design specifications. This achieves three-dimensional construction of the collection well, effectively reducing the workload of collection well design and improving design efficiency.

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Abstract

The application relates to the technical field of intelligent building technology, and discloses a water collecting well deployment method, device, equipment and storage medium. The method comprises the following steps: acquiring plan drawings related to a water collecting well in a drainage system and a reference function block, and extracting graphic element information in the plan drawings; based on the graphic element information, a water collecting well contour position corresponding to the water collecting well is recognized, and a plurality of first function components are constructed on the water collecting well contour position based on the reference function block; relative position detection is carried out between the constructed first function components and between the first function components and the reference function block on the water collecting well contour, and a detection result is obtained; based on the detection result, a first function component or the reference function block that does not meet a preset position condition is adjusted, and a water collecting well component is obtained. The application reduces the workload of water collecting well design and improves the water collecting well design efficiency.
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Description

Technical Field

[0001] This invention relates to the field of intelligent building technology, and in particular to a method, apparatus, equipment and storage medium for deploying water collection wells. Background Technology

[0002] With the advancement of urbanization and the increasing scale and planning of urban construction, more and more buildings require basements to vertically expand functional spaces such as parking. A proper drainage system within the basement is essential for the normal use of the building. Among these, the sump pit, as a crucial component of the basement drainage system, plays a vital role in collecting rainwater and sewage from daily life. Therefore, how to rationally design the sump pit according to its functional requirements has become an important goal in current sump pit design.

[0003] Currently, the design of water collection wells is usually done by drawing two-dimensional elements on CAD. Various design disciplines transfer two-dimensional drawings, compare and contrast the relevant design drawings, and make repeated modifications to achieve a reasonable design of the water collection well. However, this method cannot reflect the correlation between the water collection well and the foundation of each building in three dimensions. It is necessary to design samples repeatedly to show the three-dimensional shape of the water collection well. In other words, the current design efficiency of water collection wells is low. Summary of the Invention

[0004] The main objective of this invention is to solve the problem of low design efficiency of current water collection wells.

[0005] The first aspect of the present invention provides a method for deploying a water collection well, the method comprising: acquiring a plan drawing and a reference functional block related to the water collection well in a drainage system, and extracting graphic element information from the plan drawing; identifying the outline position of the water collection well corresponding to the water collection well based on the graphic element information, and constructing a plurality of first functional components at the outline position of the water collection well based on the reference functional block; performing relative position detection on the outline of the water collection well between the constructed first functional components and between the first functional components and the reference functional block, and obtaining detection results; and adjusting the first functional components or reference functional blocks that do not meet the preset position conditions based on the detection results to obtain the water collection well components.

[0006] Optionally, in a first implementation of the first aspect of the present invention, identifying the outline position of the water collection well corresponding to the water collection well based on the graphic element information includes: determining the geometric structure information and text annotation information related to the water collection well in the graphic element information; and identifying the outline position of the water collection well in the drainage system based on the geometric structure information and the text annotation information.

[0007] Optionally, in a second implementation of the first aspect of the present invention, the step of constructing a plurality of first functional components on the outline position of the water collection well based on the reference functional block includes: determining the size information of the water collection well in the text annotation information and assigning the size information to a first family of parameters of a preset basic component; constructing a plurality of first functional components based on the reference functional block according to the assignment result; and combining each of the first functional components with the outline position of the water collection well to obtain the finally constructed first functional component.

[0008] Optionally, in a third implementation of the first aspect of the present invention, the inspection result includes a first inspection result and a second inspection result. The step of performing relative position detection on the contour of the water collection well between the constructed first functional components and between each first functional component and a reference functional block to obtain the detection result includes: extracting three-dimensional spatial information corresponding to each first functional component and the reference functional block; calculating the minimum perpendicular distance between each first functional component and the reference functional block and the minimum perpendicular distance between each first functional component based on the three-dimensional spatial information; determining whether the minimum perpendicular distance is less than a preset first distance; if the minimum perpendicular distance is less than the preset first distance, determining that the first functional component or reference functional block corresponding to the minimum perpendicular distance does not meet the preset position conditions, and generating a corresponding first inspection result; if the minimum perpendicular distance is not less than the preset first distance, determining that the first functional component or reference functional block corresponding to the minimum perpendicular distance meets the preset position conditions, and generating a corresponding second inspection result.

[0009] Optionally, in a fourth implementation of the first aspect of the present invention, the water collection well component is a first water collection well component, a second water collection well component, or a third water collection well component. The step of adjusting the first functional component or reference functional block that does not meet the preset position conditions based on the detection results to obtain the water collection well component includes: determining, based on the detection results, the relative positional relationship between the first functional component or reference functional block that does not meet the preset position conditions and the corresponding first functional component, wherein the relative positional relationship is a first relationship, a second relationship, or a third relationship; adjusting the corresponding reference functional block based on the first relationship to obtain the first water collection well component; or, adjusting the corresponding first functional component based on the second relationship to obtain the second water collection well component; or, adjusting the corresponding first functional component based on the third relationship to obtain the third water collection well component.

[0010] Optionally, in a fifth implementation of the first aspect of the present invention, the step of adjusting the corresponding reference functional block based on the first relationship to obtain the first water collection well component includes: selecting a reference functional block from the first functional components whose minimum perpendicular distance is less than a preset first distance based on the first relationship; adjusting the second family parameters corresponding to the selected reference functional block based on the minimum perpendicular distance less than the preset first distance, and constructing the adjusted reference functional block using the adjusted second family parameters; and cutting the adjusted reference functional block using the first functional component to obtain the first water collection well component.

[0011] Optionally, in a sixth implementation of the first aspect of the present invention, adjusting the corresponding first functional component based on the second relationship to obtain the second water collection well component includes: selecting a first functional component or reference functional block from the first functional components whose minimum vertical distance is less than a preset second distance based on the second relationship; selecting a filling functional component of a corresponding shape based on the minimum vertical distance less than the preset second distance and the selected first functional component or reference functional block; and splicing the filling functional component into the first functional component to obtain the second water collection well component.

[0012] Optionally, in a seventh implementation of the first aspect of the present invention, adjusting the corresponding first functional component based on the third relationship to obtain a third water collection well component includes: selecting a first functional component from the first functional components whose minimum perpendicular distance is less than a preset third distance based on the third relationship; selecting a hollow shearing component of a corresponding shape based on the minimum perpendicular distance less than the preset third distance and the selected first functional component; and splicing the hollow shearing component into the first functional component to obtain the third water collection well component.

[0013] A second aspect of the present invention provides a water collection well deployment device, comprising: a graphic element extraction module, configured to acquire plan drawings and reference functional blocks related to water collection wells in a drainage system, and extract graphic element information from the plan drawings; a component construction module, configured to identify the outline position of the water collection well corresponding to the water collection well based on the graphic element information, and construct a plurality of first functional components at the outline position of the water collection well based on the reference functional blocks; a component judgment module, configured to perform relative position detection on the outline of the water collection well between the constructed first functional components and between the first functional components and the reference functional blocks, and obtain detection results; and a component adjustment module, configured to adjust the first functional components or reference functional blocks that do not meet the preset position conditions based on the detection results, thereby obtaining water collection well components.

[0014] Optionally, in a first implementation of the second aspect of the present invention, the component construction module includes: an information determination unit, used to determine the geometric structure information and text annotation information related to the water collection well in the graphic element information; and an information recognition unit, used to identify the outline position of the water collection well in the drainage system based on the geometric structure information and the text annotation information.

[0015] Optionally, in a second implementation of the second aspect of the present invention, the component construction module further includes: a parameter assignment unit, used to determine the size information of the water collection well in the text annotation information and assign the size information to a first family of parameters of the preset basic component; a functional component unit, used to construct a plurality of first functional components based on the reference functional block according to the assignment result; and a component combination unit, used to combine each of the first functional components with the outline position of the water collection well to obtain the finally constructed first functional component.

[0016] Optionally, in a third implementation of the second aspect of the present invention, the component judgment module includes: a three-dimensional extraction unit, used to extract three-dimensional spatial information corresponding to each of the first functional components and the reference functional block respectively; a distance calculation unit, used to calculate the minimum perpendicular distance between each of the first functional components and the reference functional block and the minimum perpendicular distance between each of the first functional components based on the three-dimensional spatial information; a judgment unit, used to judge whether the minimum perpendicular distance is less than a preset first distance; a non-compliance unit, used to determine that if the minimum perpendicular distance is less than the preset first distance, the first functional component or reference functional block corresponding to the minimum perpendicular distance does not meet the preset position conditions, and generate a corresponding first inspection result; and a compliance unit, used to determine that if the minimum perpendicular distance is not less than the preset first distance, the first functional component or reference functional block corresponding to the minimum perpendicular distance meets the preset position conditions, and generate a corresponding second inspection result.

[0017] Optionally, in a fourth implementation of the second aspect of the present invention, the component adjustment module further includes: a position determination unit, configured to determine, based on the detection result, the relative positional relationship between a first functional component or reference functional block that does not meet the preset position conditions and the corresponding first functional component, wherein the relative positional relationship is a first relationship, a second relationship, or a third relationship; a first adjustment unit, configured to adjust the corresponding reference functional block based on the first relationship to obtain a first water collection well component; a second adjustment unit, configured to adjust the corresponding first functional component based on the second relationship to obtain a second water collection well component; and a third adjustment unit, configured to adjust the corresponding first functional component based on the third relationship to obtain a third water collection well component.

[0018] Optionally, in a fifth implementation of the second aspect of the present invention, the first adjustment unit includes: selecting a reference functional block from the first functional components whose minimum perpendicular distance is less than a preset first distance based on the first relationship; adjusting the second family parameters corresponding to the selected reference functional block based on the minimum perpendicular distance less than the preset first distance, and constructing the adjusted reference functional block using the adjusted second family parameters; and cutting the adjusted reference functional block using the first functional components to obtain a first water collection well component.

[0019] Optionally, in a sixth implementation of the second aspect of the present invention, the second adjustment unit includes: selecting a first functional component or a reference functional block from the first functional components whose minimum vertical distance is less than a preset second distance based on the second relationship; selecting a filling functional component of a corresponding shape based on the minimum vertical distance less than the preset second distance and the selected first functional component or reference functional block; and splicing the filling functional component into the first functional component to obtain a second water collection well component.

[0020] Optionally, in a seventh implementation of the second aspect of the present invention, the third adjustment unit includes: selecting a first functional component from the first functional components whose minimum perpendicular distance is less than a preset third distance based on the third relationship; selecting a hollow shearing component of a corresponding shape based on the minimum perpendicular distance less than the preset third distance and the selected first functional component; and splicing the hollow shearing component into the first functional component to obtain a third water collection well component.

[0021] A third aspect of the present invention provides a water collection well deployment device, comprising: a memory and at least one processor, wherein the memory stores instructions; the at least one processor invokes the instructions in the memory to cause the water collection well deployment device to perform the various steps of the above-described water collection well deployment method.

[0022] A fourth aspect of the present invention provides a computer-readable storage medium storing instructions that, when executed on a computer, cause the computer to perform the steps of the above-described method for deploying water collection wells.

[0023] The technical solution provided by this invention involves acquiring plan drawings and reference functional blocks related to the collection well in a drainage system, and extracting graphic element information from the plan drawings. Based on the graphic element information, the outline position of the collection well is identified, and multiple first functional components are constructed on the outline position of the collection well based on the reference functional blocks. Relative position detection is performed on the collection well outline between the constructed first functional components and between each first functional component and the reference functional block to obtain detection results. Based on the detection results, first functional components or reference functional blocks that do not meet the preset position conditions are adjusted to obtain the collection well components. Compared with the prior art, this application extracts graphic element information from the corresponding drawings, and then generates functional components with corresponding positions and sizes on the corresponding reference functional blocks based on the graphic element information. The generated functional components are then adjusted to obtain a collection well that conforms to design specifications. This achieves three-dimensional construction of the collection well, effectively reducing the workload of collection well design and improving design efficiency. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the first embodiment of the water collection well deployment method in this invention;

[0025] Figure 2 This is a schematic diagram of a second embodiment of the water collection well deployment method in this invention;

[0026] Figure 3 This is a schematic diagram of a third embodiment of the water collection well deployment method in this invention;

[0027] Figure 4 This is a schematic diagram of one embodiment of the water collection well deployment device in this invention;

[0028] Figure 5 This is a schematic diagram of another embodiment of the water collection well deployment device in this invention;

[0029] Figure 6 This is a schematic diagram of one embodiment of the water collection well deployment device in this invention. Detailed Implementation

[0030] This invention provides a method, apparatus, device, and storage medium for deploying water collection wells. The method includes: acquiring plan drawings and reference functional blocks related to water collection wells in a drainage system, and extracting graphic element information from the plan drawings; identifying the outline position of the water collection well corresponding to the graphic element information, and constructing multiple first functional components at the outline position of the water collection well based on the reference functional blocks; performing relative position detection on the outline of the water collection well between the constructed first functional components and between each first functional component and the reference functional block, and obtaining detection results; and adjusting first functional components or reference functional blocks that do not meet the preset position conditions based on the detection results to obtain water collection well components. This invention reduces the workload of water collection well design and improves the efficiency of water collection well design.

[0031] The terms “first,” “second,” “third,” “fourth,” etc. (if present) in the specification, claims, and accompanying drawings of this invention are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments described herein can be implemented in orders other than those illustrated or described herein. Furthermore, the terms “comprising” or “having,” and any variations thereof, are intended to cover a non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0032] For ease of understanding, the specific process of the embodiments of the present invention is described below. Please refer to [link / reference]. Figure 1 The first embodiment of the water collection well deployment method in this invention includes:

[0033] 101. Obtain the plan drawings and reference functional blocks related to the water collection well in the drainage system, and extract the graphic element information from the plan drawings;

[0034] It is understood that the executing entity of this invention can be a water collection well deployment device, a terminal, or a server; no specific limitation is made here. This embodiment of the invention will be described using a server as an example.

[0035] The embodiments of this application can acquire and process relevant data based on artificial intelligence technology. Artificial intelligence (AI) refers to the theories, methods, technologies, and application systems that use digital computers or machines controlled by digital computers to simulate, extend, and expand human intelligence, perceive the environment, acquire knowledge, and use that knowledge to obtain optimal results.

[0036] Foundational technologies for artificial intelligence generally include sensors, dedicated AI chips, cloud computing, distributed storage, big data processing, operating / interactive systems, and mechatronics. AI software technologies mainly encompass computer vision, robotics, biometrics, speech processing, natural language processing, and machine learning / deep learning.

[0037] In this embodiment, the drainage system refers to a whole composed of facilities for the collection, transportation, treatment, and discharge of drainage in a certain way. This whole includes a water collection well as a component, and is mainly used in the underground drainage system of related buildings. The plan drawing refers to the relevant two-dimensional design drawings of the drainage system (such as structural drawings, water-related drawings, architectural drawings, etc.). The two-dimensional design drawings include hand-drawn paper drawings, CAD drawings, and other design software drawings. Here, CAD drawings are used as the plan drawing in this application. The graphic element information refers to the layers, text styles, annotation styles, etc. contained in the CAD drawings. The reference functional block refers to the starting position of the location block where the constructed water collection well is placed. The reference functional block includes a waterproof board, such as the base plate, waterproof board, independent foundation block, or pile cap.

[0038] In practical applications, the planar CAD drawings related to the water collection well in the drainage system and the reference functional blocks are obtained from the planar drawing storage area of ​​the relevant design system. Then, the graphic element information of the CAD drawings is identified and converted. The relevant graphic element data in the CAD drawings is identified, and different types of graphic element data are converted into graphic element data of a unified processing format. Then, the converted graphic element data is classified into a unified layer set to obtain the graphic element information of the same layer set.

[0039] 102. Based on the primitive information, identify the outline position of the water collection well corresponding to the water collection well, and construct multiple first functional components on the outline position of the water collection well based on the reference functional blocks.

[0040] In this embodiment, the outline position of the water collection well refers to the outline position information of the water collection well to be constructed in the graphic element information; the functional components refer to the relevant components of the water collection well (such as the base plate, concrete cushion layer, base plate reinforcement, etc.). By selecting relevant reference functional blocks, and then using the graphic element information to generate the corresponding first functional components on the reference functional blocks, the planar graphic information is quickly transformed into the first functional components of the relevant water collection well.

[0041] In practical applications, based on the primitive information obtained from the above processing, the geometric structure information and text annotation information related to the water collection well in the primitive information are determined; then, based on the geometric structure information and text annotation information, the outline position of the water collection well in the drainage system is identified; then, the size information of the water collection well in the text annotation information is determined, and the size information is assigned to the first family of parameters of the pre-set foundation component; according to the assignment result, multiple first functional components are constructed based on the reference functional block; then, each first functional component is combined with the outline position of the water collection well to obtain the finally constructed first functional component.

[0042] 103. On the outline of the water collection well, the relative positions between the various first functional components and between each first functional component and the reference functional block are detected, and the detection results are obtained.

[0043] In this embodiment, the relative detection refers to relative distance detection, that is, detecting the relevant vertical distances between each water collection well component and between each water collection well component and its corresponding reference functional block to determine whether they meet the set requirements. By performing relative detection on the constructed first functional component, the constructed first functional component can be adjusted according to the detection results, so that the finally constructed water collection well component can meet the engineering design requirements, avoiding the design problem of the designed water collection well not meeting the design requirements and the need for repeated rework.

[0044] In practical applications, based on the first functional components obtained from the above processing, the three-dimensional spatial information corresponding to each first functional component and the reference functional block is extracted. Then, based on the three-dimensional spatial information, the minimum perpendicular distance between each first functional component and the reference functional block, as well as the minimum perpendicular distance between each first functional component, are calculated. It is then determined whether the minimum perpendicular distance is less than a preset first distance. If the minimum perpendicular distance is less than the preset first distance, it is determined that the first functional component or reference functional block corresponding to the minimum perpendicular distance does not meet the preset position conditions, and a corresponding first inspection result is generated. If the minimum perpendicular distance is not less than the preset first distance, it is determined that the first functional component or reference functional block corresponding to the minimum perpendicular distance meets the preset position conditions, and a corresponding second inspection result is generated.

[0045] 104. Based on the test results, adjust the first functional component or reference functional block that does not meet the preset position conditions to obtain the water collection well component.

[0046] In this embodiment, the water collection well component is a first water collection well component, a second water collection well component, or a third water collection well component. Based on the above detection results, the relative positional relationship between the first functional component or reference functional block that does not meet the preset position conditions and the corresponding first functional component is determined. The relative positional relationship is a first relationship, a second relationship, or a third relationship. Based on the first relationship, the corresponding reference functional block is adjusted to obtain the first water collection well component; or, based on the second relationship, the corresponding first functional component is adjusted to obtain the second water collection well component; or, based on the third relationship, the corresponding first functional component is adjusted to obtain the third water collection well component. Specifically, based on the first relationship, a reference functional block with a minimum perpendicular distance less than a preset first distance is selected from the first functional components. Then, based on the minimum perpendicular distance less than the preset first distance, the second family of parameters corresponding to the selected reference functional block is adjusted, and the adjusted reference functional block is constructed using the adjusted second family of parameters. Finally, the adjusted reference functional block is cut using the first functional component to obtain the first water collection well component. In addition, there are other issues that need to be adjusted, and multiple issues can occur simultaneously and be handled in various combinations. For example, based on the second relationship mentioned above, a first functional component or reference functional block with a minimum perpendicular distance less than a preset second distance is selected from the first functional components. Then, based on the minimum perpendicular distance less than the preset second distance and the selected first functional component or reference functional block, a filling functional component of the corresponding shape is selected, and the filling functional component is spliced ​​into the first functional component to complete the adjustment of the first functional component. Another example is based on the third relationship, a first functional component with a minimum perpendicular distance less than a preset third distance is selected from the first functional components. Based on the minimum perpendicular distance less than the preset third distance and the selected first functional component, a hollow shearing component of the corresponding shape is selected. The hollow shearing component is spliced ​​into the first functional component to obtain the third water collection well component.

[0047] In this embodiment of the invention, plan drawings and reference functional blocks related to the water collection well in the drainage system are obtained, and graphic element information is extracted from the plan drawings. Based on the graphic element information, the outline position of the water collection well is identified, and multiple first functional components are constructed on the outline position of the water collection well based on the reference functional blocks. Relative position detection is performed on the water collection well outline between the constructed first functional components and between each first functional component and the reference functional block to obtain detection results. Based on the detection results, first functional components or reference functional blocks that do not meet the preset position conditions are adjusted to obtain the water collection well components. Compared with the prior art, this application extracts graphic element information from the corresponding drawings, and then generates functional components with corresponding positions and sizes on the corresponding reference functional blocks based on the graphic element information, and then adjusts the generated functional components to obtain a water collection well that conforms to the design specifications. This achieves three-dimensional construction of the water collection well, effectively reducing the workload of water collection well design and improving design efficiency.

[0048] Please see Figure 2 The second embodiment of the water collection well deployment method in this invention includes:

[0049] 201. Obtain the plan drawings and reference functional blocks related to the water collection well in the drainage system, and extract the graphic element information from the plan drawings;

[0050] 202. Determine the geometric structure information and text annotation information related to the water collection well in the graphic element information;

[0051] In this embodiment, the geometric structure information refers to the spatial geometric structure information of the relevant components in the drainage system, such as the location information of the water collection well in the drainage system, the combination and distribution information of the components of each water collection well, and the spatial connection coordinate information of the components of other drainage systems; the text annotation information refers to the dimension annotation information, design information, and component annotation information of the relevant components of the water collection well in the drainage system.

[0052] In practical applications, based on the graphic element information obtained from the above processing, the graphic element information is traversed through layers to extract the geometric structure information and text annotation information (such as length, depth, and width) related to the water collection well, thereby realizing the extraction of effective information on the construction of the water collection well in the planar CAD drawing.

[0053] 203. Based on geometric structure information and text annotation information, identify the outline position of the water collection well in the drainage system;

[0054] In this embodiment, the preset type refers to the basic plate placed when constructing the water collection well. It is usually a waterproof board, a raft board, or a functional plate composed of waterproof boards as the type plate. By selecting the corresponding type plate as the reference functional plate and using the outline position of the water collection well to construct the required water collection well, the rapid construction of the water collection well components can be achieved.

[0055] In practical applications, based on the geometric structure information and text annotation information obtained from the above processing, a functional block of the preset type required for the construction of the water collection well is selected in the drainage system and used as a reference functional block. The general outline of the water collection well is analyzed from the geometric structure annotation information, thereby obtaining the outline location information of the water collection well.

[0056] 204. Determine the size information of the water collection well in the text annotation information, and assign the size information to the first family of parameters of the pre-set foundation component;

[0057] In this embodiment, the family parameters refer to the general design parameters of a project in Revit. By setting the relevant family parameters, a three-dimensional model of the graphic can be constructed.

[0058] In practical applications, the size information of the water collection well is extracted from the above text annotation information. Then, the first family of parameters of the corresponding pre-set foundation component is matched according to the component information included in the relevant size information, and the size information is assigned to the first family of parameters of the pre-set foundation component.

[0059] 205. Based on the assignment results, construct multiple first functional components using the reference functional modules as a foundation;

[0060] In this embodiment, based on the above-mentioned assignment results, the above-mentioned reference functional blocks are used as the basis for the components to construct multiple first functional components, such as manhole cover components and load-bearing components, which together form the basic components of the water collection well.

[0061] 206. Combine the positions of each first functional component with the outline of the water collection well to obtain the final constructed first functional component;

[0062] In this embodiment, based on the relative spatial information of each water collection well component in the above-mentioned geometric structure information, the positions of each first functional component and the water collection well outline are combined to obtain the constructed first functional component.

[0063] 207. On the outline of the water collection well, the relative position detection is performed between each of the constructed first functional components and between each of the first functional components and the reference functional block, and the detection results are obtained;

[0064] 208. Based on the test results, adjust the first functional component or reference functional block that does not meet the preset position conditions to obtain the water collection well component.

[0065] In this embodiment of the invention, geometric structure information and text annotation information related to the water collection well are determined from the primitive information; based on the geometric structure information and text annotation information, the outline position of the water collection well in the drainage system is identified; the size information of the water collection well in the text annotation information is determined, and the size information is assigned to the first family of parameters of the preset foundation component; according to the assignment result, multiple first functional components are constructed based on the reference functional block; each first functional component is combined with the outline position of the water collection well to obtain the finally constructed first functional component. Compared with the prior art, this application utilizes the geometric structure information and text annotation information in the primitive information to select the corresponding reference functional block and generate the corresponding outline position of the water collection well, and then generates the corresponding first functional component in the outline position of the water collection well based on the reference functional block. This achieves the three-dimensional construction of the components of the water collection well.

[0066] Please see Figure 3 The third embodiment of the water collection well deployment method in this invention includes:

[0067] 301. Obtain the plan drawings and reference functional blocks related to the water collection well in the drainage system, and extract the graphic element information from the plan drawings;

[0068] 302. Based on the primitive information, identify the outline position of the water collection well corresponding to the water collection well, and construct multiple first functional components on the outline position of the water collection well based on the reference functional blocks.

[0069] 303. Extract the three-dimensional spatial information corresponding to each first functional component and the reference functional block respectively;

[0070] In this embodiment, based on the first functional component and reference functional block obtained by the above processing, a certain point of the preset reference block is used as the origin coordinate of the three-dimensional space, thereby extracting the three-dimensional spatial information corresponding to each first functional component and reference functional block.

[0071] 304. Based on the three-dimensional spatial information, calculate the minimum perpendicular distance between each first functional component and the reference functional block, as well as the minimum perpendicular distance between each first functional component;

[0072] In this embodiment, the minimum perpendicular distance refers to the minimum perpendicular distance between the first functional component (i.e., the sump well) and the sump well opening, the minimum perpendicular distance between the edge of the first functional component (i.e., the sump well opening) and the edge of the reference functional block (i.e., the foundation functional block (independent foundation / pile cap)), and the minimum perpendicular distance between the sump well entity and the junction with the raft slab / waterproofing slab, and the junction with the adjacent foundation entity and the raft slab / waterproofing slab. Here, the reference functional block refers to the independent foundation / pile cap.

[0073] In practical applications, based on the aforementioned three-dimensional spatial information, the minimum perpendicular distances between each first functional component and the reference functional block, as well as between each first functional component, are calculated using Revit's relevant calculation formulas. Specifically, the minimum perpendicular distances between sump pits, between sump pits and their respective independent foundations / piles, and between sump pits and their adjacent independent foundations / piles are calculated.

[0074] 305. Determine whether the minimum perpendicular distance is less than the preset first distance;

[0075] In this embodiment, the preset first distance refers to a perpendicular distance that meets the standard design requirements; here, 500 is used as the first distance for explanation. It is then determined whether the minimum perpendicular distance is less than the preset first distance of 500.

[0076] 306. If the minimum vertical distance is less than the preset first distance, then the first functional component or reference functional block corresponding to the distance less than the preset first distance is determined to be inconsistent with the preset position conditions, and the corresponding first inspection result is generated.

[0077] In this embodiment, based on the above-mentioned determination of whether the minimum perpendicular distance is less than a preset first distance, if the minimum perpendicular distance is less than the preset first distance, it is determined that the first functional component or the reference functional block does not meet the preset position conditions, thereby generating a corresponding first inspection result. Here, the first inspection result includes three cases: the minimum perpendicular distance between the first functional component and the reference functional block is equal to 500, less than 500 but greater than 0 (i.e., the minimum perpendicular distance between the sump and the adjacent independent foundation / pillar), and less than 0 (i.e., the minimum perpendicular distance between the sump and the independent foundation / pillar). In addition, the first inspection result also includes three cases: the minimum perpendicular distance between sumps is equal to 500, less than 500 but greater than 0, and less than 0.

[0078] 307. If the minimum vertical distance is not less than the preset first distance, then determine that the first functional component or reference functional block corresponding to the minimum vertical distance meets the preset position conditions, and generate the corresponding second inspection result.

[0079] In this embodiment, based on the above judgment of whether the minimum vertical distance is less than the preset first distance, if the minimum vertical distance is not less than the preset first distance, the first functional component or reference functional block is made to meet the preset position conditions, thereby generating the second inspection result corresponding to the water collection well component that meets the design requirements, and finally constructing the required water collection well.

[0080] 308. Based on the detection results, determine the relative positional relationship between the first functional component or reference functional block that does not meet the preset position conditions and the corresponding first functional component. The relative positional relationship is a first relationship, a second relationship, or a third relationship.

[0081] In this embodiment, based on the first inspection result described above, the positional relationship between the relative vertical distance between the first functional component or reference functional block that does not meet the preset position conditions and the corresponding first functional component is determined, wherein the relative positional relationship is a first relationship, a second relationship, or a third relationship.

[0082] 309. Based on the first relationship, adjust the corresponding reference functional blocks to obtain the first water collection well component;

[0083] In this embodiment, based on the first detection result, a reference functional block with a minimum vertical distance less than a preset first distance is selected from the aforementioned first functional components. For example, a reference functional block with a minimum vertical distance less than 0 between the first functional component and the reference functional block (i.e., the minimum vertical distance between the sump and the independent foundation / pile) is selected as the required reference functional block. Here, the reference functional block refers to the independent foundation / pile. Then, based on the minimum vertical distance, the elevation parameters of the corresponding second family of parameters of the selected reference functional block are refined and adjusted so that the first functional component constructed using the reference functional block can meet the design requirements. The adjusted reference functional block is cut using the first functional component to obtain the first sump component.

[0084] 310. Based on the second relationship, adjust the corresponding first functional component to obtain the second water collection well component;

[0085] In this embodiment, based on the second relationship, a first functional component with a perpendicular distance less than a preset second distance is selected from the first functional components. For example, the minimum perpendicular distance between the first functional component and the corresponding reference functional block is less than 500, and the minimum perpendicular distance between the first functional component and its adjacent first functional component is less than 500 (i.e., the minimum perpendicular distance at the intersection of the water collection well and the independent foundation / pillar, and the minimum perpendicular distance between the water collection well and the adjacent water collection well). Based on the minimum perpendicular distance less than the preset second distance and the selected first functional component or reference functional block, a filling functional component of the corresponding shape is selected. For example, by adding a solid shape, which is also judged, a family of rectangular concrete blocks is called and placed in the gap between the water collection well and the foundation. Thus, the filling functional component is spliced ​​into the first functional component to obtain the second water collection well component.

[0086] 311. Based on the third relationship, the corresponding first functional component is adjusted to obtain the third water collection well component.

[0087] In this embodiment, based on the third relationship, a first functional component with a minimum vertical distance less than a preset third distance is selected from the first functional components. For example, when the minimum vertical distance of the edge of the well opening is less than 500 (i.e., the minimum vertical distance of the edge of the well opening is less than 500), the well component is selected as the first functional component to be adjusted. Then, based on the minimum vertical distance less than the preset third distance and the selected first functional component, a hollow shearing component of the corresponding shape is selected, and the hollow shearing component is spliced ​​into the first functional component to obtain the third well component.

[0088] In this embodiment of the invention, three-dimensional spatial information corresponding to each first functional component and reference functional block is extracted respectively; based on the three-dimensional spatial information, the minimum perpendicular distance between each first functional component and the reference functional block, as well as the minimum perpendicular distance between each first functional component, are calculated; it is determined whether the minimum perpendicular distance is less than a preset first distance; if the minimum perpendicular distance is less than the preset first distance, it is determined that the first functional component or reference functional block corresponding to the minimum perpendicular distance does not meet the preset position conditions, and a corresponding first inspection result is generated; if the minimum perpendicular distance is not less than the preset first distance, it is determined that the first functional component or reference functional block corresponding to the minimum perpendicular distance does not meet the preset position conditions, and a corresponding second inspection result is generated; based on the first relationship, a reference functional block corresponding to the minimum perpendicular distance less than the preset first distance is selected from the first functional components; based on the minimum perpendicular distance less than the preset first distance, the second family parameters corresponding to the selected reference functional block are adjusted, and the adjusted reference functional block is constructed using the adjusted second family parameters; the adjusted reference functional block is cut using the first functional component to obtain the first water collection well component. Compared to existing technologies, this application calculates the minimum perpendicular distance between the constructed water collection well components and judges the compliance of the calculated results with the preset first distance. Components that do not meet the requirements are reconstructed by modifying the family parameters. Components with perpendicular distances between components less than the second distance are matched with corresponding filling components for combination adjustment, and components with perpendicular distances less than the third distance are matched with corresponding blank shearing components for adjustment. Ultimately, the constructed water collection well components meet the engineering design requirements, avoid unnecessary engineering problems, and accelerate the overall design efficiency of the water collection well.

[0089] The above describes the method for deploying water collection wells in the embodiments of the present invention. The following describes the device for deploying water collection wells in the embodiments of the present invention. Please refer to [link / reference]. Figure 4 One embodiment of the water collection well deployment device in this invention includes:

[0090] The graphic element extraction module 401 is used to obtain the plan drawing and reference functional block related to the water collection well in the drainage system, and extract the graphic element information in the plan drawing;

[0091] The component construction module 402 is used to identify the outline position of the water collection well corresponding to the water collection well based on the graphic element information, and to construct a plurality of first functional components on the outline position of the water collection well based on the reference functional block.

[0092] The component judgment module 403 is used to perform relative position detection on the outline of the water collection well between each constructed first functional component and between each first functional component and the reference functional block, and obtain the detection result.

[0093] The component adjustment module 404 is used to adjust the first functional component or reference functional block that does not meet the preset position conditions based on the detection results, so as to obtain the water collection well component.

[0094] In this embodiment of the invention, plan drawings and reference functional blocks related to the water collection well in the drainage system are obtained, and graphic element information is extracted from the plan drawings. Based on the graphic element information, the outline position of the water collection well is identified, and multiple first functional components are constructed on the outline position of the water collection well based on the reference functional blocks. Relative position detection is performed on the water collection well outline between the constructed first functional components and between each first functional component and the reference functional block to obtain detection results. Based on the detection results, first functional components or reference functional blocks that do not meet the preset position conditions are adjusted to obtain the water collection well components. Compared with the prior art, this application extracts graphic element information from the corresponding drawings, and then generates functional components with corresponding positions and sizes on the corresponding reference functional blocks based on the graphic element information, and then adjusts the generated functional components to obtain a water collection well that conforms to the design specifications. This achieves three-dimensional construction of the water collection well, effectively reducing the workload of water collection well design and improving design efficiency.

[0095] Please see Figure 5 Another embodiment of the water collection well deployment device in this invention includes:

[0096] The graphic element extraction module 401 is used to obtain the plan drawing and reference functional block related to the water collection well in the drainage system, and extract the graphic element information in the plan drawing;

[0097] The component construction module 402 is used to identify the outline position of the water collection well corresponding to the water collection well based on the graphic element information, and to construct a plurality of first functional components on the outline position of the water collection well based on the reference functional block.

[0098] The component judgment module 403 is used to perform relative position detection on the outline of the water collection well between each constructed first functional component and between each first functional component and the reference functional block, and obtain the detection result.

[0099] The component adjustment module 404 is used to adjust the first functional component or reference functional block that does not meet the preset position conditions based on the detection results, so as to obtain the water collection well component.

[0100] Furthermore, the component construction module 402 includes:

[0101] Information determination unit 4021 is used to determine the geometric structure information and text annotation information related to the water collection well in the graphic element information;

[0102] The information recognition unit 4022 is used to identify the outline position of the water collection well in the drainage system based on the geometric structure information and the text annotation information.

[0103] Furthermore, the component construction module 402 also includes:

[0104] The parameter assignment unit 4023 is used to determine the size information of the water collection well in the text annotation information and assign the size information to the first family of parameters of the preset foundation component;

[0105] Functional component unit 4024 is used to construct multiple first functional components based on the reference functional block according to the assignment result;

[0106] The component assembly unit 4025 is used to combine each of the first functional components with the outline position of the water collection well to obtain the final constructed first functional component.

[0107] Furthermore, the component determination module 403 includes:

[0108] The three-dimensional extraction unit 4031 is used to extract the three-dimensional spatial information corresponding to each of the first functional components and the reference functional blocks respectively;

[0109] The distance calculation unit 4032 is used to calculate the minimum perpendicular distance between each of the first functional components and the reference functional block, as well as the minimum perpendicular distance between each of the first functional components, based on the three-dimensional spatial information.

[0110] The judgment unit 4033 is used to determine whether the minimum perpendicular distance is less than a preset first distance;

[0111] The non-compliance unit 4034 is used to determine that the first functional component or reference functional block corresponding to the minimum vertical distance does not meet the preset position conditions if the minimum vertical distance is less than the preset first distance, and to generate the corresponding first inspection result.

[0112] The conforming unit 4035 is used to determine that the first functional component or reference functional block corresponding to the minimum vertical distance is not less than the preset first distance if the minimum vertical distance is not less than the preset first distance, and to generate the corresponding second inspection result.

[0113] Furthermore, the component adjustment module 404 also includes:

[0114] The position determination unit 4041 is used to determine, based on the detection result, the relative positional relationship between the first functional component or reference functional block that does not meet the preset positional conditions and the corresponding first functional component, wherein the relative positional relationship is a first relationship, a second relationship or a third relationship;

[0115] The first adjustment unit 4042 is used to adjust the corresponding reference functional block based on the first relationship to obtain the first water collection well component;

[0116] The second adjustment unit 4043 is used to adjust the corresponding first functional component based on the second relationship to obtain the second water collection well component;

[0117] The third adjustment unit 4044 is used to adjust the corresponding first functional component based on the third relationship to obtain the third water collection well component.

[0118] Furthermore, the first adjustment unit 4042 includes:

[0119] Based on the first relationship, a reference functional block corresponding to a minimum perpendicular distance less than a preset first distance is selected from the first functional components; based on the minimum perpendicular distance less than the preset first distance, the second family parameters corresponding to the selected reference functional block are adjusted, and the adjusted reference functional block is constructed using the adjusted second family parameters; the adjusted reference functional block is cut using the first functional components to obtain the first water collection well component.

[0120] Furthermore, the second adjustment unit 4043 includes:

[0121] Based on the second relationship, a first functional component or reference functional block with a minimum vertical distance less than a preset second distance is selected from the first functional components; based on the minimum vertical distance less than the preset second distance and the selected first functional component or reference functional block, a filling functional component of the corresponding shape is selected; the filling functional component is spliced ​​into the first functional component to obtain the second water collection well component.

[0122] Furthermore, the third adjustment unit 4044 includes:

[0123] Based on the third relationship, a first functional component with a minimum perpendicular distance less than a preset third distance is selected from the first functional components; based on the minimum perpendicular distance less than the preset third distance and the selected first functional component, a hollow shearing component of the corresponding shape is selected; the hollow shearing component is spliced ​​into the first functional component to obtain the third water collection well component.

[0124] In this embodiment of the invention, element information is extracted from two-dimensional planar drawings, and then the extracted element information is used to construct water collection well components. The constructed water collection well components are then assessed for compliance with design requirements. Components that do not meet the design requirements are adjusted in terms of parameters and component combinations, thereby obtaining water collection well components that meet the design specifications. This enables the batch generation of three-dimensional models of water collection well components and the entire drainage system, improving the overall design efficiency of water collection wells and facilitating engineering review of design samples by different design departments.

[0125] above Figure 4 and Figure 5 The water collection well deployment device in this embodiment of the invention will be described in detail from the perspective of modular functional entities. The water collection well deployment equipment in this embodiment of the invention will be described in detail from the perspective of hardware processing.

[0126] Figure 6 This is a schematic diagram of a water collection well deployment device 600 provided in an embodiment of the present invention. The water collection well deployment device 600 can vary significantly due to different configurations or performance characteristics. It may include one or more central processing units (CPUs) 610 (e.g., one or more processors) and a memory 620, and one or more storage media 630 (e.g., one or more mass storage devices) for storing application programs 633 or data 632. The memory 620 and storage media 630 can be temporary or persistent storage. The program stored in the storage media 630 may include one or more modules (not shown in the diagram), each module may include a series of instruction operations on the water collection well deployment device 600. Furthermore, the processor 610 may be configured to communicate with the storage media 630 and execute the series of instruction operations in the storage media 630 on the water collection well deployment device 600.

[0127] The water collection well deployment device 600 may also include one or more power supplies 640, one or more wired or wireless network interfaces 650, one or more input / output interfaces 660, and / or one or more operating systems 631, such as Windows Server, Mac OS X, Unix, Linux, FreeBSD, etc. Those skilled in the art will understand that... Figure 6The illustrated structure of the water collection well deployment equipment does not constitute a limitation on the water collection well deployment equipment, and may include more or fewer components than illustrated, or combine certain components, or have different component arrangements.

[0128] The present invention also provides a water collection well deployment device, wherein the computer device includes a memory and a processor, the memory storing computer-readable instructions, and when the computer-readable instructions are executed by the processor, the processor performs each step of the water collection well deployment method in the above embodiments.

[0129] The present invention also provides a computer-readable storage medium, which can be a non-volatile computer-readable storage medium or a volatile computer-readable storage medium, wherein the computer-readable storage medium stores instructions that, when executed on a computer, cause the computer to perform various steps of the water collection well deployment method.

[0130] Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the specific working processes of the systems, devices, and units described above can be referred to the corresponding processes in the foregoing method embodiments, and will not be repeated here.

[0131] If the integrated unit is implemented as a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present invention, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of the present invention. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.

[0132] This application can be used in a wide variety of general-purpose or special-purpose computer system environments or configurations. Examples include: personal computers, server computers, handheld or portable devices, tablet devices, multiprocessor systems, microprocessor-based systems, set-top boxes, programmable consumer electronics, network PCs, minicomputers, mainframe computers, and distributed computing environments including any of the above systems or devices. This application can be described in the general context of computer-executable instructions executed by a computer, such as program modules. Generally, program modules include routines, programs, objects, components, data structures, etc., that perform specific tasks or implement specific abstract data types. This application can also be practiced in distributed computing environments where tasks are performed by remote processing devices connected via a communication network. In distributed computing environments, program modules can reside in local and remote computer storage media, including storage devices.

[0133] The above-described embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A water collection well deployment method, characterized by, The method for deploying water collection wells includes: Obtain the plan drawings and reference functional blocks related to the water collection well in the drainage system, and extract the graphic element information from the plan drawings; Based on the graphic element information, the outline position of the water collection well corresponding to the water collection well is identified, and based on the reference functional block, multiple first functional components are constructed at the outline position of the water collection well. On the outline of the water collection well, relative position detection is performed between the various first functional components and between the various first functional components and the reference functional block to obtain detection results, which include first inspection results and second inspection results. Based on the test results, the first functional component or reference functional block that does not meet the preset position conditions is adjusted to obtain the water collection well component; The process of performing relative position detection on the outline of the water collection well between the various first functional components and between each first functional component and the reference functional block to obtain detection results includes: extracting the three-dimensional spatial information corresponding to each first functional component and the reference functional block respectively; calculating the minimum perpendicular distance between each first functional component and the reference functional block and the minimum perpendicular distance between each first functional component based on the three-dimensional spatial information; determining whether the minimum perpendicular distance is less than a preset first distance; if the minimum perpendicular distance is less than the preset first distance, determining that the first functional component or reference functional block corresponding to the minimum perpendicular distance does not meet the preset position conditions, and generating a corresponding first inspection result; if the minimum perpendicular distance is not less than the preset first distance, determining that the first functional component or reference functional block corresponding to the minimum perpendicular distance meets the preset position conditions, and generating a corresponding second inspection result.

2. The water catchment well deployment method of claim 1, wherein, The step of identifying the water collection well outline and reference functional block corresponding to the water collection well based on the graphic element information includes: Determine the geometric structure information and text annotation information related to the water collection well in the graphic element information; Based on the geometric structure information and the text annotation information, the outline position of the water collection well in the drainage system is identified.

3. The water catchment well deployment method of claim 2, wherein, Based on the reference functional block, a plurality of first functional components are constructed at the outline position of the water collection well, including: Determine the size information of the water collection well in the text annotation information, and assign the size information to the first family of parameters of the preset foundation component; Based on the assignment results, multiple first functional components are constructed using the reference functional blocks as a foundation; The first functional components are combined with the outline position of the water collection well to obtain the final constructed first functional components.

4. The water catchment well deployment method of claim 1, wherein, The water collection well component is a first water collection well component, a second water collection well component, or a third water collection well component. Based on the detection results, adjustments are made to the first functional component or reference functional block that does not meet the preset position conditions to obtain the water collection well component, including: Based on the detection results, the relative positional relationship between the first functional component or reference functional block that does not meet the preset position conditions and the corresponding first functional component is determined. The relative positional relationship is a first relationship, a second relationship, or a third relationship. Based on the first relationship, the corresponding reference functional modules are adjusted to obtain the first water collection well component; or... Based on the second relationship, the corresponding first functional component is adjusted to obtain the second water collection well component; or... Based on the third relationship, the corresponding first functional component is adjusted to obtain the third water collection well component.

5. The water catchment well deployment method of claim 4, wherein, Based on the first relationship, the corresponding reference functional blocks are adjusted to obtain the first water collection well component, including: Based on the first relationship, a reference functional block is selected from the first functional components whose minimum vertical distance is less than a preset first distance. Based on the minimum perpendicular distance less than the preset first distance, the second family parameters corresponding to the selected reference function block are adjusted, and the adjusted reference function block is constructed using the adjusted second family parameters. The first functional component is used to cut the adjusted reference functional block to obtain the first water collection well component.

6. The water catchment well deployment method of claim 4, wherein, The adjustment of the corresponding first functional component based on the second relationship to obtain the second water collection well component includes: Based on the second relationship, a first functional component or a reference functional block with a minimum perpendicular distance less than a preset second distance is selected from the first functional components. Based on the minimum vertical distance less than the preset second distance and the selected first functional component or reference functional block, select the filling functional component of the corresponding shape. The filling functional component is spliced ​​into the first functional component to obtain the second water collection well component.

7. The method for deploying water collection wells according to claim 4, characterized in that, The third water collection well component is obtained by adjusting the corresponding first functional component based on the third relationship, including: Based on the third relationship, a first functional component whose minimum perpendicular distance is less than the preset third distance is selected from the first functional components; Based on the minimum perpendicular distance less than the preset third distance and the selected first functional component, a hollow shearing component of the corresponding shape is selected; The hollow shearing component is spliced ​​into the first functional component to obtain the third water collection well component.

8. A water collection well deployment device, characterized in that, The water collection well deployment device includes: The graphic element extraction module is used to obtain the plan drawings and reference functional blocks related to the water collection well in the drainage system, and extract the graphic element information in the plan drawings; The component construction module is used to identify the outline position of the water collection well corresponding to the water collection well based on the graphic element information, and to construct multiple first functional components at the outline position of the water collection well based on the reference functional block. The component judgment module is used to perform relative position detection on the outline of the water collection well between the various first functional components and between the various first functional components and the reference functional block, and to obtain the detection results, which include a first inspection result and a second inspection result. The component adjustment module is used to adjust the first functional component or reference functional block that does not meet the preset position conditions based on the detection results, so as to obtain the water collection well component; The process of performing relative position detection on the outline of the water collection well between the various first functional components and between each first functional component and the reference functional block to obtain detection results includes: extracting the three-dimensional spatial information corresponding to each first functional component and the reference functional block respectively; calculating the minimum perpendicular distance between each first functional component and the reference functional block and the minimum perpendicular distance between each first functional component based on the three-dimensional spatial information; determining whether the minimum perpendicular distance is less than a preset first distance; if the minimum perpendicular distance is less than the preset first distance, determining that the first functional component or reference functional block corresponding to the minimum perpendicular distance does not meet the preset position conditions, and generating a corresponding first inspection result; if the minimum perpendicular distance is not less than the preset first distance, determining that the first functional component or reference functional block corresponding to the minimum perpendicular distance meets the preset position conditions, and generating a corresponding second inspection result.

9. A water collection well deployment device, characterized in that, The water collection well deployment device includes: a memory and at least one processor, wherein the memory stores instructions; The at least one processor invokes the instructions in the memory to cause the well deployment device to perform the steps of the well deployment method as described in any one of claims 1-7.

10. A computer-readable storage medium storing instructions thereon, characterized in that, When the instructions are executed by the processor, they implement the various steps of the water collection well deployment method as described in any one of claims 1-7.

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