Efficient reusable complex electrical design environment construction method, device, medium and product
By building a model- and data-driven complex electrical design environment on the AutoCAD platform, the problems of low efficiency and poor quality in the electrical interconnection design of electronic devices have been solved, realizing the automation and standardization of electrical interconnection design and improving design efficiency and quality.
Patent Information
- Application Number
- CN202511668513.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-14
- Publication Date
- 2026-02-06
AI Technical Summary
Existing technologies are inefficient and of poor quality in the electrical interconnection design of electronic devices, failing to meet the requirements of rapid iteration and market development. Furthermore, the reusability and reusability of design results are low, leading to high R&D costs and reduced market competitiveness.
The AutoCAD platform is used for secondary development to build a complex electrical design environment based on models and data. Through electrical interfaces, it connects the basic design data model, interconnected design rules and drawing standard databases, serialized electrical connection template library, front-end design and back-end CAD data interaction, linkage modification and design verification, integrated drawing and layout optimization, so as to realize the automation and standardization of electrical interconnection design.
It improves the efficiency and quality of electrical interconnection design for complex systems, enables the rapid and accurate generation of electrical design drawings, breaks through the bottleneck of massive complex electrical connection design, and improves the efficiency and quality of design output.
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Figure CN121479991A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of complex system electrical interconnection design for electronic devices, and specifically to a method, device, medium, and product for constructing an efficient and reusable complex electrical design environment, so as to achieve rapid and accurate design of complex system electrical interconnections and standardized generation of electrical drawings. Background Technology
[0002] The statements in this section are provided only as background information in relation to this disclosure and may not constitute prior art.
[0003] Currently, in the electrical interconnection design of electronic equipment products, in order to characterize the large-scale electrical connection relationships between multiple components within the device, AutoCAD software is typically used to design and draw the connection relationships based on each interconnect core wire or port pin by pin.
[0004] As electronic devices and systems become increasingly complex and electrical interconnect bus types become more diverse, the density of electrical interconnects within a system increases exponentially, and the relationships between electrical interconnects become highly complex. Current design methods that rely entirely on manual processes cannot meet the requirements of rapid product iteration and market development plans in terms of efficiency, quality, and standardization. Furthermore, the reusability and reusability of design results are low, further exacerbating product development costs and reducing the product's market competitiveness.
[0005] Therefore, there is an urgent need to study an automated and efficient design method, and to develop an automated design tool based on this method, so as to improve the efficiency and quality of electrical interconnection design for complex systems. Summary of the Invention
[0006] The purpose of this invention is to address the problems existing in the prior art by providing an efficient and reusable method, device, medium, and product for constructing a complex electrical design environment, using the AutoCAD platform as a carrier and employing secondary development technology. Based on this method, a model- and data-driven complex electrical design environment has been developed. The aim is to achieve, through the proposed construction method, the model-based electrical interface interconnection design of complex systems in the detailed design stage of complex electronic device electrical interfaces. By leveraging data-driven approaches and mask templates for rapid reuse, this enables the rapid and accurate design of system interconnection interfaces for electronic device products, as well as the automatic and standardized integration and output of electrical design drawings.
[0007] The technical solution of the present invention is as follows: A method for constructing an efficient and reusable complex electrical design environment includes: Step S1: Construction of the basic data model for electrical interface connection design; Step S2: Constructing the database of interconnected design rules and drawing standards; Step S3: Construct a series of electrical connection template libraries; Step S4: Design the data interaction between the front-end and the CAD back-end; Step S5: Linked modification and design verification; Step S6: Integrated drawing and layout optimization.
[0008] Further, step S1 includes: By employing a model-based digital representation method for complex electrical connections, and based on a vast number of complex electrical connection design business models, this method targets different types of connectors selected for equipment products. The connectors are categorized according to their purpose, bus purpose, and voltage level characteristics. This process models the diverse range of connector types and completes the construction of a basic data model for electrical interface connection design, including standardized signal definitions, connection attribute annotations, and bus topology identification.
[0009] Further, step S2 includes: Around the business process of design and drawing, and matching the different design business types of circuit diagrams, wiring diagrams, and cable diagrams, the basic data and rules such as national standards for design and drawing, process specifications for cable design, standard specifications for standardization review, technical requirements supporting design and manufacturing, structural elements for wiring diagrams and cable design, and platform electrical specifications for product-level integration and reconfiguration are structured and modeled to complete the construction of an interconnection design rules and drawing standard database, forming a digital rule element set to support the realization of design correctness verification and standardized automatic drawing in electrical interconnection design.
[0010] Further, step S3 includes: By employing a product-level agile refactoring method based on a gridded model mask, and taking a common product architecture as the foundation, a gridded electrical connection mask is formed by aggregating electrical connection models and common grouped connection relationships, combined with general attribute parameter configuration. This allows for the rapid refactoring and derivative application of mature or existing product designs, achieving product-level agile refactoring and reuse of electrical interconnection designs.
[0011] Further, step S4 includes: By using the AutoCAD secondary development interface library ObjectARX and leveraging AutoCAD's built-in block and attribute customization development techniques and methods, backend data is bound to visual blocks, creating a seamless link between frontend and backend CAD data. The data input consists of the gridded electrical connection model, vectorized assembly graphics, and digitized cable connection relationships formed in steps S1 and S3, driven by the hierarchical structured data and regularized sets formed in step S2. Based on the interactive navigation of the design process, the electrical interconnection design of complex systems can be completed quickly.
[0012] Further, step S5 includes: Based on the automatic error detection and correction method for massive electrical interconnection design, the bidirectional modification and synchronization method for electrical connection data integrating design and manufacturing, and the design and standardization verification fusion method, the connection errors in the design results produced in step S4 are quickly identified and located by forming a digital rule element set in step S2 and combining rule matching and model calculation. This completes the automatic matching verification of design data and design rules, realizing design as standard.
[0013] Further, step S6 includes: After completing the rule verification and error correction in step S5, the layout optimization method based on area adaptive adaptation is used to automatically optimize the layout of the drawings based on the principle of optimal ratio between the connection area and the drawing sheet. This achieves the organic integration of design, rules, specifications, and drafting processes, enabling one-click, high-efficiency, and high-quality generation of standardized electrical design drawings.
[0014] The present invention also proposes an electronic device, comprising: At least one processor; and a memory communicatively connected to said at least one processor; The memory stores instructions that can be executed by the at least one processor, and the at least one processor executes the instructions stored in the memory to perform the method described above.
[0015] The present invention also proposes a computer-readable storage medium for storing instructions that, when executed, cause the method described above to be implemented.
[0016] The present invention also proposes a computer program product, which implements the above-described method when executed by a processor.
[0017] Compared with existing technologies, the advantages of this invention are: This invention uses the AutoCAD platform as a carrier and, through secondary development, achieves functions such as automatic generation of electrical interconnection relationship model data, automated verification of electrical interconnection relationship model data, model-based drawing of electrical interconnection drawings, and automated generation and verification of electrical interconnection relationship drawings, forming a complete rapid design and generation function for electrical interconnection drawings. The invention proposes a method for constructing an efficient and reusable complex electrical design environment, breaking through the bottleneck of efficiency and quality in the design and productization of massive and complex electrical connections in modern electronic product development. It achieves efficient design of massive complex electrical interconnections. Furthermore, the complex electrical design environment formed by this method organically integrates design, rules, specifications, and drafting processes, enabling the efficient and high-quality generation of standardized electrical design drawings with a single click, thus improving the output efficiency and quality of massive complex electrical interconnection designs. Attached Figure Description
[0018] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments recorded in the embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings.
[0019] Figure 1 This is a technical implementation architecture example diagram of a model- and data-driven approach to building efficient and reusable complex electrical design environments. Figure 2 This is an example diagram illustrating the application of a technical solution for building an efficient and reusable complex electrical design environment based on model and data-driven methods. Figure 3 This is an example diagram of the data verification results for the electrical interconnection model; Figure 4 This is an example diagram of data linkage modification in the electrical interconnection model; Figure 5 This is an example diagram of optimized electrical drawing layout; Figure 6 It is a standardized drawing example of the complete electrical interconnection design output.
[0020] Figure 7 This is a schematic diagram of the structure of an electronic device provided in an embodiment of the present invention. Detailed Implementation
[0021] It should be noted that relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0022] The features and performance of the present invention will be further described in detail below with reference to embodiments.
[0023] Example 1 This embodiment proposes a method for constructing an efficient and reusable complex electrical design environment. Based on model-based digital representation of complex electrical connections, automatic error detection and correction in massive electrical interconnection designs, and product-level agile reconstruction and reuse technology for electrical interconnection designs, this method proposes a model- and data-driven approach to constructing an efficient and reusable complex electrical design environment. Through secondary development technology and using AutoCAD as the platform, this model- and data-driven efficient and reusable complex electrical design environment is designed. Based on the electrical connection design business of the system, it realizes digital modeling and incremental expansion and maintenance of model data for different connector models, different electrical design rules, product design requirements, cable design process requirements, and drafting standardization requirements. Based on design process navigation, it realizes the organic integration of design, rules, standards, and drafting processes, enabling the efficient and high-quality generation of standardized electrical design drawings with "one click," thereby improving the output efficiency and quality of massive complex electrical interconnection designs.
[0024] In this embodiment, a method for constructing an efficient and reusable complex electrical design environment specifically includes the following steps: Step S1: Construction of the basic data model for electrical interface connection design; Based on a model-based digital representation method for complex electrical connections, and taking into account a large number of complex electrical connection design business models, the selection of different types of connectors such as radio frequency, low frequency, optical, and optoelectronic composite connectors selected for benchmark equipment products is compared. The connectors are classified according to their uses, bus uses, and level characteristics. The diverse connector types are modeled, and the construction of the basic data model for electrical interface connection design, including standardized signal definitions, connection attribute annotations, and bus topology identification, is completed.
[0025] Step S2: Construction of Interconnection Design Rules and Drawing Standard Database; Based on the business process of design and drawing, matching the different design business types of circuit diagrams, wiring diagrams, and cable diagrams, the basic data and rules, including national standards for design and drawing, process specifications for cable design, standard specifications for standardization review, technical requirements supporting design and manufacturing, structural elements for wiring diagrams and cable design, and platform electrical specifications for product-level integration and reconfiguration, are structured and modeled to complete the construction of the interconnection design rules and drawing standard database, forming a digital set of rule elements to support the verification of design correctness and standardized automatic drawing in electrical interconnection design.
[0026] Step S3: Construct a series of electrical connection template libraries; Using a product-level agile refactoring method based on a gridded model mask, based on a common product architecture, by aggregating electrical connection models and common grouped connection relationships, and combining general attribute parameter configurations, a gridded electrical connection mask is formed, which can quickly refactor and derive mature or existing product designs, and realize product-level agile refactoring and reuse of electrical interconnection designs.
[0027] Step S4: Design the data interaction between the front-end and the CAD back-end; using the AutoCAD secondary development interface library ObjectARX, and leveraging AutoCAD's built-in block and attribute customization development techniques and methods, bind the back-end data with the visual blocks to build a seamless link between the front-end and back-end CAD data. Using the gridded electrical connection model, vectorized assembly graphics, and digitized cable connection relationships formed in Steps S1 and S3 as data inputs, and driven by the hierarchical structured data and regularized sets formed in Step S2, the electrical interconnection design of complex systems is quickly completed based on the design process navigation interaction.
[0028] Step S5: Linked Modification and Design Verification; Based on the automatic error detection and correction method for massive electrical interconnection design (see a patent for an automatic error detection and correction method, system and readable storage medium for massive electrical interconnection design), the bidirectional modification and synchronization method for electrical connection data integrating design and manufacturing (see a patent for a bidirectional modification and synchronization method, system and readable storage medium for electrical connection data integrating design and manufacturing), and the design and standardization verification fusion method, through the digitized rule element set formed in step S2, combined with rule matching and model calculation, the connection errors in the design results produced in step S4 are quickly identified and located, completing the automatic matching verification of design data and design rules, realizing "design is standard".
[0029] Step S6: Integrated drawing and layout optimization; After completing the rule verification and error correction in step S5, the layout optimization method based on area adaptive adaptation is used to automatically optimize the drawing layout based on the optimal ratio of connection area and drawing size, so as to organically integrate the design, rules, specifications and drawing process and generate standardized electrical design drawings with high efficiency and high quality with "one click".
[0030] In this embodiment, it should be noted that in step S1, the reusable electrical connection model proposed in this invention, combined with flexible combination and structured calling, realizes the accurate digital expression of the diverse connection requirements of the system. This ends the inefficient and low-quality design mode that relied solely on point-to-point wiring for many years, and opens up a new model-based and digital mode for the design of high-density electrical interconnection of complex systems. It breaks through the efficiency and quality bottlenecks of massive and complex electrical connection design and product expression in the product development process.
[0031] In this embodiment, it should be noted that in step S2, the present invention, through the proposed automatic error detection and correction method based on rule element set, uses the model-based digital expression method of electrical connection as a basis and incorporates enterprise-level standardized design specification review elements to form a digital rule element set, which lays the data foundation for the automatic matching verification of design data and design rules in step S5.
[0032] In this embodiment, it should be noted that in step S3, a common product architecture is innovatively used as the basis. By aggregating electrical connection models and common group connection relationships, and combining general attribute parameter configuration, mature or existing product designs can be quickly reconstructed and derived for application, thereby improving design efficiency while ensuring design quality.
[0033] In this embodiment, it should be noted that in step S4, the present invention uses the AutoCAD secondary development interface library ObjectARX and AutoCAD's built-in block and attribute customization secondary development technology to form a model- and data-driven, efficient, reusable, and complex electrical design environment based on CAD. Based on the interactive mode of design process navigation, it realizes the organic integration of design, rules, specifications, and drafting processes, thereby improving the efficiency and quality of massive complex electrical interconnection design.
[0034] In this embodiment, it should be noted that in step S5, in order to ensure the correctness of the electrical interconnection interface design, the present invention uses electrical design rules and circuit design specification models of different connection types as basic data, incorporates enterprise-level standardized design specification review elements, and combines rule matching and model calculation to quickly identify and locate connection errors and design flaws in a large number of connections, complete the automatic matching verification of design data and design rules, and realize "design is standard".
[0035] In this embodiment, it should be noted that in step S6, the present invention encapsulates the basic A0-A4 size drawing sheet model, standard electrical symbol model, and electrical connection element model as specified in GB / T14689-2008, automatically identifies the model and draws it into the electrical interconnection relationship drawing. At the same time, through the drawing sheet layout optimization algorithm, it generates standardized electrical design drawings with high efficiency and high quality with "one click", improving the drawing efficiency and quality of complex electrical interconnection designs.
[0036] Based on the same technical concept, embodiments of the present invention also provide an electronic device that can implement the efficient and reusable complex electrical design environment construction method provided in the above embodiments of the present invention. In one embodiment, the electronic device may be a server, a terminal device, or other electronic device. Figure 7 As shown, the electronic device may include: At least one processor and a memory connected to the at least one processor. In this embodiment of the invention, the specific connection medium between the processor and the memory is not limited. Figure 7 The example used is the connection between the processor and memory via a bus. The bus... Figure 7 The connections between other components are indicated by thick lines and are for illustrative purposes only, not as limiting information. Buses can be divided into address buses, data buses, control buses, etc., but for ease of representation, [the specific bus type is not shown here]. Figure 7 The processor is represented by a single thick line, but this does not imply that there is only one bus or one type of bus. Alternatively, a processor can also be called a controller; there are no restrictions on the name.
[0037] In this embodiment of the invention, the memory stores instructions executable by at least one processor. By executing the instructions stored in the memory, the at least one processor can perform the efficient and reusable method for constructing complex electrical design environments described above. The processor can implement... Figure 7 The functions of each module in the device shown.
[0038] The processor is the control center of the device. It can connect to various parts of the control device through various interfaces and lines. By running or executing instructions stored in memory and calling data stored in memory, it can monitor the device's various functions and process data, thereby enabling overall monitoring of the device.
[0039] In an alternative design, the processor may include one or more processing units. The processor may integrate an application processor and a modem processor, wherein the application processor primarily handles the operating system, user interface, and applications, while the modem processor primarily handles wireless communication. It is understood that the modem processor may also not be integrated into the processor. In some embodiments, the processor and memory may be implemented on the same chip; in some embodiments, they may also be implemented separately on separate chips.
[0040] The processor can be a general-purpose processor, such as a CPU, digital signal processor, application-specific integrated circuit, field-programmable gate array or other programmable logic device, discrete gate or transistor logic device, or discrete hardware component, capable of implementing or executing the methods, steps, and logic block diagrams disclosed in the embodiments of this invention. The general-purpose processor can be a microprocessor or any conventional processor. The steps of the efficient and reusable complex electrical design environment construction method disclosed in the embodiments of this invention can be directly manifested as execution by a hardware processor, or execution by a combination of hardware and software modules within the processor.
[0041] Memory, as a non-volatile computer-readable storage medium, can be used to store non-volatile software programs, non-volatile computer-executable programs, and modules. Memory can include at least one type of storage medium, such as flash memory, hard disk, multimedia cards, card-type memory, random access memory (RAM), static random access memory (SRAM), programmable read-only memory (PROM), read-only memory (ROM), and electrically erasable programmable read-only memory (EPROM). Only memory (EEPROM), magnetic storage, magnetic disks, optical disks, etc. A memory is any other medium capable of carrying or storing desired program code in the form of instructions or data structures, and accessible by a computer, but is not limited thereto. The memory in embodiments of this invention can also be a circuit or any other device capable of performing storage functions for storing program instructions and / or data.
[0042] By designing and programming the processor, the code corresponding to the efficient and reusable complex electrical design environment construction method described in the foregoing embodiments can be embedded into the chip, enabling the chip to execute the steps of the method described in the foregoing embodiments during runtime. How to design and program the processor is a technique well-known to those skilled in the art and will not be elaborated upon here.
[0043] Based on the same inventive concept, embodiments of the present invention also provide a storage medium storing computer instructions that, when executed on a computer, cause the computer to perform the efficient and reusable complex electrical design environment construction method described above.
[0044] In some alternative embodiments, the present invention also provides a method for constructing an efficient and reusable complex electrical design environment, which can also be implemented as a program product including program code that, when the program product is run on a device, causes the control device to perform the steps in the method for constructing an efficient and reusable complex electrical design environment according to various exemplary embodiments of the present invention as described above.
[0045] It should be noted that although several units or sub-units of the apparatus have been mentioned in the detailed description above, this division is merely exemplary and not mandatory. In fact, according to embodiments of the invention, the features and functions of two or more units described above can be embodied in one unit. Conversely, the features and functions of one unit described above can be further divided and embodied by multiple units. Furthermore, although the operation of the method of the invention is described in a specific order in the drawings, this does not require or imply that these operations must be performed in that specific order, or that all the operations shown must be performed to achieve the desired result. Additionally or alternatively, certain steps may be omitted, multiple steps may be combined into one step, and / or one step may be broken down into multiple steps.
[0046] Those skilled in the art will understand that embodiments of the present invention can be provided as methods, systems, or computer program products. Therefore, the present invention can take the form of a completely hardware embodiment, a completely software embodiment, or an embodiment combining software and hardware aspects. Furthermore, the present invention can be implemented in one or more computer-usable storage media (including, but not limited to, disk storage, CD-ROMs) containing computer-usable program code. The form of a computer program product implemented on ROM, optical memory, etc.
[0047] This invention is described with reference to flowchart illustrations and / or block diagrams of methods, apparatus (systems), and computer program products according to embodiments of the invention. It will be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, special-purpose computer, embedded processor, or other programmable data processing apparatus to produce a server, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, generate instructions for implementing the process. Figure 1 One or more processes and / or boxes Figure 1 A device that provides the functions specified in one or more boxes.
[0048] Program code for performing the operations of this invention can be written using any combination of one or more programming languages, including object-oriented programming languages such as Java and C++, as well as conventional procedural programming languages such as C or similar languages. The program code can be executed entirely on the user's computing device, partially on the user's device, as a standalone software package, partially on the user's computing device and partially on a remote computing device, or entirely on a remote computing device or server.
[0049] In cases involving remote computing devices, the remote computing device can be connected to the user's computing device via any type of network, including a local area network (LAN) or a wide area network (WAN), or it can be connected to an external computing device (e.g., via the Internet using an Internet service provider).
[0050] These computer program instructions may also be stored in a computer-readable storage medium that can direct a computer or other programmable data processing device to function in a particular manner, such that the instructions stored in the computer-readable storage medium produce an article of manufacture including instruction means, which are implemented in a process Figure 1 One or more processes and / or boxes Figure 1 The function specified in one or more boxes.
[0051] These computer program instructions may also be loaded onto a computer or other programmable data processing equipment to cause a series of operational steps to be performed on the computer or other programmable equipment to produce a computer-implemented process, thereby providing instructions that execute on the computer or other programmable equipment for implementing the process. Figure 1 One or more processes and / or boxes Figure 1 The steps of the function specified in one or more boxes.
[0052] Furthermore, in some embodiments, a computer program product is also proposed, which, when executed by a processor, implements the above-described method for constructing an efficient and reusable complex electrical design environment.
[0053] Example 2 See Figure 1 This embodiment proposes a model- and data-driven method for constructing an efficient and reusable complex electrical design environment. The technical implementation architecture derived from this method mainly includes four functional dimensions: a basic database composed of digital models such as connector type series, electrical rule set, and drawing specification set; a series of electrical connection template library; front-end and back-end data interaction and integrated integration; and data input processing for structured analysis of gridded electrical connection models, vectorized assembly graphics, and digital cable connection relationships.
[0054] See Figure 2 Based on the model- and data-driven efficient and reusable complex electrical design environment construction method proposed in this embodiment, a practical application scheme for electrical interconnection interface design and drawing is derived, according to... Figure 2 The application solution process allows designers to complete the design, verification, extraction and binding of all electrical interconnections, and drawing of electrical interconnection diagrams.
[0055] See Figure 3 The electrical interconnection model data verification results of this implementation automatically match and verify the interconnection interface design results with the design rules through rule matching and model calculation, and quickly identify and locate design errors.
[0056] See Figure 4 This implementation enables data linkage modification of the electrical interconnection model, achieving full-process traceability from output results to design data, and ensuring data consistency.
[0057] See Figure 5 This implementation optimizes the layout of electrical drawings. Through the drawing layout optimization algorithm, it can generate standardized electrical design drawings with high efficiency and high quality with "one click".
[0058] See Figure 6 This implementation yields the standard results of completing the electrical interconnection drawings for the equipment.
[0059] The embodiments described above merely illustrate specific implementation methods of this application, and while the descriptions are detailed and specific, they should not be construed as limiting the scope of protection of this application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of the technical solution of this application, and these modifications and improvements all fall within the scope of protection of this application.
[0060] This background section is provided to generally present the context of the invention. The work of the currently named inventors, the work to the extent described in this background section, and aspects of this section that did not constitute prior art at the time of application are neither expressly nor impliedly acknowledged as prior art to the invention.
Claims
1. A method for constructing an efficient and reusable complex electrical design environment, characterized in that, include: Step S1: Construction of the basic data model for electrical interface connection design; Step S2: Constructing the database of interconnected design rules and drawing standards; Step S3: Construct a series of electrical connection template libraries; Step S4: Design the data interaction between the front-end and the CAD back-end; Step S5: Linked modification and design verification; Step S6: Integrated drawing and layout optimization.
2. The method for constructing an efficient and reusable complex electrical design environment according to claim 1, characterized in that, Step S1 includes: By employing a model-based digital representation method for complex electrical connections, and based on a vast number of complex electrical connection design business models, this method targets different types of connectors selected for equipment products. The connectors are categorized according to their purpose, bus purpose, and voltage level characteristics, thus modeling the diverse range of connector types and completing the construction of a basic data model for electrical interface connection design.
3. The method for constructing an efficient and reusable complex electrical design environment according to claim 2, characterized in that, Step S2 includes: Around the business process of design and drawing, and matching the different design business types of circuit diagrams, wiring diagrams, and cable diagrams, the basic data and rules such as national standards for design and drawing, process specifications for cable design, standard specifications for standardization review, technical requirements supporting design and manufacturing, structural elements for wiring diagrams and cable design, and platform electrical specifications for product-level integration and reconfiguration are structured and modeled to complete the construction of an interconnection design rules and drawing standard database, forming a digital rule element set to support the realization of design correctness verification and standardized automatic drawing in electrical interconnection design.
4. The method for constructing an efficient and reusable complex electrical design environment according to claim 3, characterized in that, Step S3 includes: By employing a product-level agile refactoring method based on a gridded model mask, and taking a common product architecture as the foundation, a gridded electrical connection mask is formed by aggregating electrical connection models and common grouped connection relationships, combined with general attribute parameter configuration. This allows for the rapid refactoring and derivative application of mature or existing product designs, achieving product-level agile refactoring and reuse of electrical interconnection designs.
5. The method for constructing an efficient and reusable complex electrical design environment according to claim 4, characterized in that, Step S4 includes: By using the AutoCAD secondary development interface library ObjectARX and leveraging AutoCAD's built-in block and attribute customization development techniques and methods, backend data is bound to visual blocks, creating a seamless link between frontend and backend CAD data. The data input consists of the gridded electrical connection model, vectorized assembly graphics, and digitized cable connection relationships formed in steps S1 and S3, driven by the hierarchical structured data and regularized sets formed in step S2. Based on the interactive navigation of the design process, the electrical interconnection design of complex systems can be completed quickly.
6. The method for constructing an efficient and reusable complex electrical design environment according to claim 5, characterized in that, Step S5 includes: Based on the automatic error detection and correction method for massive electrical interconnection design, the bidirectional modification and synchronization method for electrical connection data integrating design and manufacturing, and the design and standardization verification fusion method, the connection errors in the design results produced in step S4 are quickly identified and located by forming a digital rule element set in step S2 and combining rule matching and model calculation. This completes the automatic matching verification of design data and design rules, realizing design as standard.
7. The method for constructing an efficient and reusable complex electrical design environment according to claim 6, characterized in that, Step S6 includes: After completing the rule verification and error correction in step S5, the layout optimization method based on area adaptive adaptation is used to automatically optimize the layout of the drawings based on the principle of optimal ratio between the connection area and the drawing sheet. This achieves the organic integration of design, rules, specifications, and drafting processes, enabling one-click, high-efficiency, and high-quality generation of standardized electrical design drawings.
8. An electronic device, characterized in that, include: At least one processor; and a memory communicatively connected to the at least one processor; The memory stores instructions executable by the at least one processor, which executes the instructions stored in the memory to perform the method as described in any one of claims 1-7.
9. A computer-readable storage medium, characterized in that, The computer-readable storage medium is used to store instructions that, when executed, cause the method as described in any one of claims 1-7 to be implemented.
10. A computer program product, characterized in that, When the computer program is executed by a processor, it implements the method described in any one of claims 1-7.