A method, system and device for selecting equipment materials and a storage medium

By using a 3D view to display the model and installation status of material components in the equipment material selection interface, combined with compatibility rules and progress information, the problem of the unintuitive equipment material selection interface is solved, and a more efficient and accurate selection process is achieved.

CN115346033BActive Publication Date: 2026-04-28JINAN INSPUR DATA TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
JINAN INSPUR DATA TECH CO LTD
Filing Date
2022-08-19
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

The existing equipment material selection interface lacks intuitiveness, making it difficult for staff and customers to understand the shape and function of material components, and easily leading to omissions in selection.

Method used

The system uses a 3D view to display the model and installation status of the currently selected material components. Based on the compatibility rules of model and quantity restrictions, the system selects material components one by one in the set order, and updates the selection progress and power consumption information in real time on the display interface.

Benefits of technology

This allows users to understand material components and equipment configurations more intuitively and conveniently, reducing the probability of omissions in selection and improving selection efficiency and accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of equipment material selection method, system, device and storage medium, applied to assembly technical field, comprising: the N kind material assembly of equipment is sequentially regarded as current material assembly to be selected according to set order;After determining any one current material assembly to be selected, the form of 3D view is displayed in the first display area of display interface each selectable model of current material assembly to be selected, and the model and quantity of current material assembly to be selected are selected according to the operation instruction of user;Current selected each material assembly is installed, and the form of 3D view is displayed in the second display area of display interface after installation state;Wherein, N indicates the total number of selectable material assembly of equipment.The scheme of the application is beneficial to user more intuitive, conveniently understand material assembly, and understand the overall configuration of equipment, and it is not easy to appear selection and missing situation.
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Description

Technical Field

[0001] This invention relates to the field of assembly technology, and in particular to a method, system, apparatus and storage medium for selecting and matching equipment materials. Background Technology

[0002] Designing a product, such as a server, switch, or video storage device, usually involves multiple configurations. Appropriate hardware and software are the guarantee of product quality, while on-demand configuration is the requirement of users when purchasing products.

[0003] Current products typically have configuration selection interfaces, allowing staff to choose different configurations based on customer needs, and then determine the materials and proceed with production according to the selected information. However, most current configuration selection interfaces are text-based, using a few lines of specific text to describe the information of a material component. This is not easy for staff or customers to understand, and it does not allow for an intuitive and quick understanding of the material component's form and function. Furthermore, because there are many types of material components available for equipment configuration, staff may overlook some during the selection process, especially less experienced staff who are more prone to errors. In addition, due to the large variety of material components available for equipment configuration, staff and customers lack a comprehensive understanding of the equipment's configuration.

[0004] In summary, how to effectively select and match equipment materials is a technical problem that urgently needs to be solved by those skilled in the art, so that users can understand the material components and the overall configuration of the equipment more intuitively and conveniently, and are less likely to miss any selections. Summary of the Invention

[0005] The purpose of this invention is to provide a method, system, device, and storage medium for selecting and matching equipment materials, so as to effectively select and match equipment materials, which helps users to understand the material components more intuitively and conveniently, and understand the overall configuration of the equipment, and reduces the likelihood of omissions in selection and matching.

[0006] To solve the above-mentioned technical problems, the present invention provides the following technical solution:

[0007] A method for selecting and matching equipment materials, comprising:

[0008] The N material components of the equipment are selected one by one in a set order;

[0009] After determining any one of the material components to be selected, each optional model of the material component to be selected is displayed in a 3D view in the first display area of ​​the display interface, and the model and quantity of the material component to be selected are selected according to the user's operation instructions.

[0010] Install the currently selected material components and display the installed status in a 3D view in the second display area of ​​the display interface;

[0011] Wherein, N represents the total number of optional material components that the equipment can be equipped with, and N is a positive integer not less than 2.

[0012] Preferably, after determining any one of the material components to be selected, the method further includes:

[0013] Based on a preset first compatibility rule for representing model restrictions between different types of material components, and the selection information of various material components currently selected, the optional models of the material components to be selected that do not conform to the first compatibility rule are filtered.

[0014] Accordingly, displaying each optional model of the currently selected material component in a 3D view in the first display area of ​​the display interface includes:

[0015] The first display area of ​​the display interface shows each of the remaining optional models of the material components to be selected after filtering in a 3D view.

[0016] Preferably, the step of selecting the model and quantity of the material component to be selected according to the user's operation instructions includes:

[0017] The model of the material component to be selected is determined based on the user's first operation command;

[0018] Based on the preset second compatibility rule for representing the quantity limits between different types of material components, the quantity limit value of the material component to be selected, and the selection information of the various material components currently selected, the selectable quantity values ​​of the material component to be selected are displayed.

[0019] Based on the user's second operation command, select the quantity of the material component to be selected from the various selectable quantities displayed.

[0020] Preferred options also include:

[0021] The device model information is displayed in the third display area of ​​the display interface;

[0022] The name of the material component to be selected is displayed in the fourth display area of ​​the display interface.

[0023] Preferred options also include:

[0024] After the user selects the model and quantity of the material component to be selected according to the user's operation instructions, the progress information is updated in the fifth display area of ​​the display interface;

[0025] The progress information represents the percentage of the number of material component types that have been selected in the N material components of the equipment.

[0026] Preferred options also include:

[0027] After all N material components have been selected, the total rated power consumption of the device is determined and displayed in the sixth display area of ​​the display interface.

[0028] Preferred options also include:

[0029] After all N material components have been selected, an exploded view of the device is displayed in the seventh display area of ​​the display interface.

[0030] A material selection system for equipment, comprising:

[0031] The material component switching module is used to select N material components of the equipment one by one as the current material component to be selected in a set order.

[0032] The optional display module is used to display each optional model of the material component to be selected in a 3D view in the first display area of ​​the display interface after any one material component to be selected is determined, and to select the model and quantity of the material component to be selected according to the user's operation instructions.

[0033] The whole machine display module is used to install the currently selected material components and display the installed status in a 3D view in the second display area of ​​the display interface;

[0034] Wherein, N represents the total number of optional material components that the equipment can be equipped with, and N is a positive integer not less than 2.

[0035] A material selection device for equipment, comprising:

[0036] Memory, used to store computer programs;

[0037] A processor for executing the computer program to implement the steps of the equipment material selection method as described above.

[0038] A computer-readable storage medium storing a computer program that, when executed by a processor, implements the steps of the equipment material selection method as described above.

[0039] Applying the technical solution provided by the embodiments of the present invention, considering that there may be many types of material components to be selected for the equipment, omissions may occur when selecting them in the traditional solution. Therefore, in the solution of this application, the N types of material components of the equipment are selected one by one in a set order as the material components to be selected at the current time, so there will be no omissions in the selection.

[0040] After identifying any one of the material components to be selected, this application displays each optional model of the selected material component in a 3D view in the first display area of ​​the display interface, and allows the user to select the model and quantity of the selected material component according to the user's operation instructions. It can be seen that displaying each optional model of the selected material component in a 3D view allows the user to intuitively and conveniently understand the selected material component, thus facilitating a quick and easy understanding of its form and function. Furthermore, this application installs each of the selected material components and displays the installed state in a 3D view in the second display area of ​​the display interface. Therefore, the user can have an intuitive understanding of the overall configuration of the equipment, achieving a WYSIWYG sensory experience, further facilitating the user's material selection for the equipment.

[0041] In summary, the solution proposed in this application can effectively select and match equipment and materials, which helps users to understand the material components and the overall configuration of the equipment more intuitively and conveniently, and is less likely to result in omissions in the selection and matching. Attached Figure Description

[0042] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0043] Figure 1 This is a flowchart illustrating the implementation of a method for selecting and matching equipment materials according to the present invention.

[0044] Figure 2 This is a schematic diagram of the layout of the display interface in a specific embodiment of the present invention;

[0045] Figure 3 This is a schematic diagram of the structure of a material selection system for equipment according to the present invention;

[0046] Figure 4 This is a schematic diagram of the structure of a material selection device for equipment in this invention. Detailed Implementation

[0047] The core of this invention is to provide a method for selecting and matching equipment materials, which helps users to understand the material components and the overall configuration of the equipment more intuitively and conveniently, and makes it less likely that the selection and matching will be omitted.

[0048] To enable those skilled in the art to better understand the present invention, the invention will be further described in detail below with reference to the accompanying drawings and specific embodiments. Obviously, the described embodiments are merely some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0049] Please refer to Figure 1 , Figure 1 This is a flowchart illustrating an implementation method for selecting and allocating equipment materials according to the present invention. The method may include the following steps:

[0050] Step S101: Select the N material components of the equipment one by one in the set order as the current material components to be selected.

[0051] Specifically, the equipment described in this application may be a server, a switch, a video storage device, etc., and it is understood that the required material components may be different for different devices, and for different models of the same device.

[0052] N represents the total number of optional material components for the device, and N is a positive integer not less than 2. As described earlier, different models of the same device may require different material components. This difference can refer to variations in the total number of types N, or variations in the range of available material components of the same type. For example, for server model A, the available CPU models are limited to various domestic CPU models, while for server model B, the available CPU models are limited to various imported CPU models. Similarly, for server model A, the network card is fixed and does not require selection; in this scenario, the network card is not included among the N material components of the device. However, for server model B, the network card needs to be selected by the user; in this scenario, the network card is included among the N material components of the device.

[0053] Considering that there may be many types of material components to be selected for the equipment, meaning the value of N may be large, to avoid omissions in selection, for a specific equipment model, this application's solution will sequentially select the N material components for the equipment in a set order, thus preventing omissions. The setting order can be preset by staff according to the equipment model and can be adjusted as needed. Furthermore, when setting the order, quantity restrictions and model restrictions between different types of material components can be considered, thus reducing the likelihood of errors.

[0054] For example, if the number of PSUs (Power Supply Units) is not limited, but the number of power cords is determined by the number of PSUs, then the PSUs should be listed before the power cords when setting the order. Similarly, once a specific chassis model is selected, restrictions will be placed on the types and quantities of other components. Therefore, in practical applications, the chassis is usually selected as the first component to be chosen.

[0055] Furthermore, considering that material components can be set both inside and outside the chassis, and that this application needs to display the overall 3D view in the second display area, the settings are usually made in an inside-out order. That is, the chassis and various material components installed inside the chassis are selected one by one in a certain order as the current material components to be selected, and then the various material components installed outside the chassis are selected one by one in a certain order as the current material components to be selected.

[0056] Taking a server as an example, in a specific scenario, based on the server model, the quantity and model restrictions of different types of component materials, and the priority of internal physical components, the order of the N component materials is set. For instance, if the N component materials are selected one by one in the set order, the order can be represented as "Chassis - CPU - Memory - Front Hard Drive - System Disk - Cache Disk - RAID - Network Card - PSU - Power Cable - Rail". Of course, in some cases, swapping the positions of some physical components will not affect the solution. For example, in the above example, the order of the front hard drive, system disk, and cache disk can be interchanged.

[0057] Step S102: After determining any one material component to be selected, display each optional model of the material component to be selected in the form of a 3D view in the first display area of ​​the display interface, and select the model and quantity of the material component to be selected according to the user's operation instructions.

[0058] Taking the chassis as an example, the available chassis models can be displayed in a 3D view in the first display area of ​​the display interface. For example, for server model A, there are 5 chassis models to choose from, and the 5 chassis models can be displayed in a 3D view in the first display area.

[0059] Furthermore, in practical applications, if the material components to be selected have many optional models, such as displaying five different chassis models in a 3D view in the first display area as shown in the example above, multiple display methods such as pagination and scrolling can be set in the first display area. Users can then adjust the displayed content by clicking page-turning buttons or dragging the scroll bar. For example, in Figure 2 In this embodiment, the first display area is a first display area arranged on the right side of the display interface, and a scroll bar is provided on the right side of the first display area for user operation, so that the display content of the first display area can be adjusted.

[0060] Furthermore, it should be noted that after identifying any one of the material components to be selected, each optional model of the selected material component is displayed in a 3D view in the first display area of ​​the display interface. In practical applications, each optional model of the selected material component can also be described in text form to supplement information. For example, in... Figure 2 Currently, the display shows 3D views of chassis model 1 and chassis model 2. Text descriptions of these models can be added within the first display area, such as above, below, to the left, or to the right of the chassis model 1's 3D view, to help users better understand the chassis model. Similarly, text descriptions of chassis model 2 can also be added within the first display area, such as above or below the chassis model 2's 3D view, to further facilitate user understanding of the chassis model.

[0061] Furthermore, since each optional model of the material component to be selected is displayed in 3D view in the first display area of ​​the display interface, the 3D view can be set to a rotatable 3D view, such as rotating automatically or rotating according to the user's operation, so that the user can more clearly understand the information of the corresponding model of material component.

[0062] This application allows users to select the model and quantity of the currently selected material component based on their operation instructions. For example, in the example above, five chassis models are displayed in 3D view in the first display area. Users operate via keyboard, mouse, touchscreen, etc., and the display interface receives the user's operation instructions, thereby selecting the model and quantity of the currently selected material component. For instance, if a user clicks on the 3D view of chassis model 2 and drags it to the second display area, the selected chassis model is determined to be model 2 based on the user's operation instructions. After the user completes the dragging, a pop-up window appears, allowing the user to select from various available quantities as the selected quantity of the currently selected material component. Once the quantity is selected, the pop-up window automatically closes, and the process switches to the next material component to be selected to execute step S102.

[0063] In addition, in some cases, when there is a limit to the quantity of a certain material component, such as a fixed quantity of 1, a pop-up window can also be displayed. In this case, the pop-up window will only show the quantity "1", and it will always be fixed at 1 regardless of whether the user makes a selection.

[0064] Of course, the above example uses mouse dragging to select the model of the material component to be selected. Other implementation methods may have other operation methods, such as selecting by clicking relevant buttons, etc. That is, as long as the model and quantity of the material component to be selected can be selected according to the user's operation instructions.

[0065] The users described in this application may be staff members, customers, or other personnel.

[0066] Step S103: Install the currently selected material components and display the installed status in a 3D view in the second display area of ​​the display interface;

[0067] Once a material component is selected, it can be installed, and the installed state will be displayed in a 3D view in the second display area of ​​the interface. In other words, the second display area integrates the currently selected material components into their respective positions. As more types of material components are selected, the 3D view displayed in the second display area becomes increasingly complete, ultimately resulting in a complete 3D view of the entire machine. Similar to the first display area, the 3D view in the second display area is usually set to be rotatable, either automatically or according to user input.

[0068] By viewing the 3D view in the second display area, users can gain a comprehensive understanding of the material selection process of the device. Furthermore, users do not need to consider the complex logical relationships between different material components, achieving a WYSIWYG sensory experience.

[0069] Understandably, once all N material components of the equipment have been selected as the current material components to be selected, and the corresponding model and quantity of the material components to be selected have been selected according to the user's operation instructions, that is, once all N material components have been selected, the selection of equipment materials can be considered complete.

[0070] In one specific embodiment of the present invention, after determining any one of the material components to be selected, the method may further include:

[0071] Based on the preset first compatibility rule for representing model restrictions between different types of material components, and the selection information of various material components currently selected, the optional models of the material components to be selected that do not conform to the first compatibility rule are filtered.

[0072] Accordingly, the step S102, which describes displaying each optional model of the currently selected material component in a 3D view in the first display area of ​​the display interface, may specifically include:

[0073] The first display area of ​​the display interface shows each of the remaining optional models of the material components to be selected after filtering in a 3D view.

[0074] This implementation takes into account the potential model limitations between different types of material components. This application lists these model limitations as the first compatibility rule. For example, if the chassis model is selected as Model 2, and Model 3 of the three guide rail models is incompatible with Chassis Model 2, then this limitation needs to be pre-added to the first compatibility rule. Since the selection information for the currently selected material components includes "Chassis Model 2," Guide Rail Model 3 can be filtered out when selecting guide rails. Therefore, only the 3D views of Guide Rail Model 1 and Guide Rail Model 2 will be displayed in the first display area of ​​the display interface. Because the 3D view of Guide Rail Model 3 is not displayed, the situation where users mistakenly select incompatible material components due to unfamiliarity with the relevant compatibility rules will not occur. This reduces the probability of user errors in the equipment material selection scheme of this application.

[0075] In one specific embodiment of the present invention, step S102, which describes selecting the model and quantity of the material component to be selected according to the user's operation instruction, may specifically include:

[0076] Step 1: Select the model of the material component to be selected based on the user's first operation command;

[0077] Step 2: Based on the preset second compatibility rule for representing the quantity limits between different types of material components, the quantity limit value of the material component to be selected, and the selection information of the various material components currently selected, display the selectable quantity values ​​of the material component to be selected.

[0078] Step 3: Based on the user's second operation instruction, select the quantity of the material component to be selected from the various selectable quantities displayed.

[0079] In this implementation, when selecting the model and quantity of the currently selected material component, the model is first selected according to the first operation instruction, and then the quantity is selected. It can also be understood that, in conjunction with the aforementioned implementation, when selecting a model, the first display area of ​​the display interface can only show the various models of the currently selected material components that are allowed to be selected. Models of the currently selected material components that do not conform to relevant compatibility rules or do not meet the equipment model requirements will be hidden.

[0080] When selecting quantities, this implementation takes into account the quantity limitations between different types of material components. For example, the number of power cords described in the above example needs to be determined by the number of PSUs. In another scenario, the total number of material components X and Y is limited to no more than 6. Furthermore, this implementation also considers that the material components themselves may have quantity limitations; for example, in some cases, after determining the chassis, the maximum number of network cards can be set to 3. By combining the selection information of the various material components already selected, the available quantity values ​​for each material component to be selected can be determined and displayed. The user can then select the quantity of the material component to be selected from the displayed available quantities.

[0081] For example, in one scenario, the quantity of material component X has been selected as 3. The second compatibility rule limits the total quantity of material component X and material component Y to no more than 6, and material component Y itself has a quantity limit of 2. In this scenario, the selectable quantity values ​​of material component Y are 1 and 2. These two options can be displayed so that the user can select the quantity of material component Y from the two.

[0082] In one specific embodiment of the present invention, it further includes:

[0083] The device model information is displayed in the third display area of ​​the display interface;

[0084] The name of the material component to be selected is displayed in the fourth display area of ​​the display interface.

[0085] In this implementation, by displaying the equipment model information and the names of the material components to be selected, the user's selection experience when choosing equipment and materials can be further improved, allowing the user to intuitively understand the current selection targets. For example, in Figure 2 The device model information is shown as AS13***-G*M**, and the name of the material component to be selected is "chassis".

[0086] In one specific embodiment of the present invention, it further includes:

[0087] After the user selects the model and quantity of the material components to be selected according to the user's operation instructions, the progress information is updated in the fifth display area of ​​the display interface;

[0088] The progress information indicates the percentage of the number of material component types that have been selected out of the N material components in the equipment.

[0089] Considering that traditional selection interfaces provide limited information to users, especially since the value of N is usually large, users may want to know the current selection progress. Therefore, in this implementation, whenever the model and quantity of the material component to be selected are chosen according to the user's operation instructions, the progress information is updated in the fifth display area of ​​the display interface so that users can intuitively know the current selection progress. For example... Figure 2 The progress information shown is 15%, which means that the number of material component types that have been selected is divided by N, and the result is 15%.

[0090] In one specific embodiment of the present invention, it may further include:

[0091] After all N material components have been selected, the total rated power consumption of the equipment is determined and displayed in the sixth display area of ​​the display interface.

[0092] Considering that traditional configuration interfaces provide users with limited information, users are usually more concerned about the overall power consumption of the machine after completing the configuration. Therefore, in this implementation, after all N material components have been selected, the total rated power consumption of the equipment will be determined and displayed in the sixth display area of ​​the display interface.

[0093] The sixth display area described in this embodiment, as well as the range occupied by the first to fifth display areas described above in the display interface, can be selected according to actual needs.

[0094] In this implementation, users can directly see the total rated power consumption of the entire machine, eliminating the need for them to manually check the models of each component and calculate the total power consumption. Therefore, this implementation further improves the user's selection experience. When the total rated power consumption does not meet the user's needs, the user can also immediately identify this through the content displayed in the sixth display area and then re-select components, improving work efficiency.

[0095] In one specific embodiment of the present invention, it may further include:

[0096] After all N material components have been selected, the exploded view of the device is displayed in the seventh display area of ​​the display interface.

[0097] This implementation further considers that although the installed state can be displayed in a 3D view in the second display area of ​​the display interface, the 3D view in the second display area may become increasingly complex as the number of selected material components increases. In some cases, obstruction is unavoidable, such as material components installed inside the chassis being partially or completely obscured by material components installed outside the chassis. Therefore, in this implementation, in order to further improve the user's selection experience, after all N material components have been selected, an exploded view of the device will be displayed in the seventh display area of ​​the display interface, allowing the user to intuitively understand the overall configuration from another perspective.

[0098] This application addresses the selection of N material components for a device, where N represents the total number of selectable material components. In other words, for a specific device model, some material components may be fixed and do not require selection. In this implementation, when displaying the exploded view of the device in the seventh display area of ​​the interface, only the N selected material components can be shown. Alternatively, it can display not only the N selected material components but also various material components that do not require selection. That is, in practical applications, displaying the exploded view of the device in the seventh display area of ​​the interface can include the N material components of the device, as well as the fixed material components selected by the device.

[0099] Furthermore, in practical applications, maintenance personnel can update and maintain the 3D view in this application. Of course, hierarchical access permissions can also be set; for example, ordinary users are only allowed to select and configure equipment and materials, view maintenance users can modify the 3D view in the background, and administrators have the highest permissions, such as adjusting the setting order described in step S101, adjusting the first compatibility rule and other program content described in the aforementioned embodiments.

[0100] Applying the technical solution provided by the embodiments of the present invention, considering that there may be many types of material components to be selected for the equipment, omissions may occur when selecting them in the traditional solution. Therefore, in the solution of this application, the N types of material components of the equipment are selected one by one in a set order as the material components to be selected at the current time, so there will be no omissions in the selection.

[0101] After identifying any one of the material components to be selected, this application displays each optional model of the selected material component in a 3D view in the first display area of ​​the display interface, and allows the user to select the model and quantity of the selected material component according to the user's operation instructions. It can be seen that displaying each optional model of the selected material component in a 3D view allows the user to intuitively and conveniently understand the selected material component, thus facilitating a quick and easy understanding of its form and function. Furthermore, this application installs each of the selected material components and displays the installed state in a 3D view in the second display area of ​​the display interface. Therefore, the user can have an intuitive understanding of the overall configuration of the equipment, achieving a WYSIWYG sensory experience, further facilitating the user's material selection for the equipment.

[0102] In summary, the solution proposed in this application can effectively select and match equipment and materials, which helps users to understand the material components and the overall configuration of the equipment more intuitively and conveniently, and is less likely to result in omissions in the selection and matching.

[0103] Corresponding to the above method embodiments, this invention also provides a system for selecting and matching equipment and materials, which can be referred to in conjunction with the above.

[0104] See Figure 3 The diagram shown is a structural schematic of a material selection system for equipment according to the present invention, comprising:

[0105] The material component switching module 301 is used to select N material components of the equipment as the current material components to be selected in a set order.

[0106] The optional display module 302 is used to display each optional model of the material component to be selected in the first display area of ​​the display interface in the form of a 3D view after determining any one material component to be selected. The module also allows the user to select the model and quantity of the material component to be selected according to the user's operation instructions.

[0107] The whole machine display module 303 is used to install the currently selected material components and display the installed status in a 3D view in the second display area of ​​the display interface;

[0108] Where N represents the total number of optional material components available for the equipment, and N is a positive integer not less than 2.

[0109] In one specific embodiment of the present invention, after the selection display module 302 determines any one of the material components to be selected, the method further includes:

[0110] The filtering module is used to filter out the optional models of the material components to be selected that do not conform to the first compatibility rule based on the preset first compatibility rule for representing the model restrictions between different types of material components and the selection information of the currently selected material components.

[0111] Correspondingly, the optional display module 302 displays each optional model of the currently selected material component in a 3D view in the first display area of ​​the display interface, including:

[0112] The first display area of ​​the display interface shows each of the remaining optional models of the material components to be selected after filtering in a 3D view.

[0113] In one specific embodiment of the present invention, the optional display module 302 selects the model and quantity of the material component to be selected according to the user's operation instructions, including:

[0114] The model of the material component to be selected is determined based on the user's first operation command;

[0115] Based on the preset second compatibility rule for representing the quantity limits between different types of material components, the quantity limit value of the material component to be selected, and the selection information of the various material components currently selected, the selectable quantity values ​​of the material component to be selected are displayed.

[0116] Based on the user's second operation command, select the quantity of the material component to be selected from the various selectable quantities displayed.

[0117] In one specific embodiment of the present invention, it further includes: a model information material component name display module, used for:

[0118] The device model information is displayed in the third display area of ​​the display interface;

[0119] The name of the material component to be selected is displayed in the fourth display area of ​​the display interface.

[0120] In one specific embodiment of the present invention, it further includes: a progress information display module, used for:

[0121] After the user selects the model and quantity of the material components to be selected according to the user's operation instructions, the progress information is updated in the fifth display area of ​​the display interface;

[0122] The progress information indicates the percentage of the number of material component types that have been selected out of the N material components in the equipment.

[0123] In one specific embodiment of the present invention, a total fixed power consumption value display module is further included, for:

[0124] After all N material components have been selected, the total rated power consumption of the equipment is determined and displayed in the sixth display area of ​​the display interface.

[0125] In one specific embodiment of the present invention, an exploded view display module is further included, for:

[0126] After all N material components have been selected, the exploded view of the device is displayed in the seventh display area of ​​the display interface.

[0127] Corresponding to the above methods and system embodiments, this invention also provides a device for selecting and fitting equipment materials and a computer-readable storage medium, which can be referred to in conjunction with the above description. The computer-readable storage medium stores a computer program, which, when executed by a processor, implements the steps of the device material selection and fitting method as described in any of the above embodiments. The computer-readable storage medium referred to herein includes random access memory (RAM), main memory, read-only memory (ROM), electrically programmable ROM, electrically erasable programmable ROM, registers, hard disks, removable disks, CD-ROMs, or any other form of storage medium known in the art.

[0128] The material selection device for this equipment may include:

[0129] Memory 401 is used to store computer programs;

[0130] Processor 402 is configured to execute a computer program to implement the steps of the equipment material selection method in any of the above embodiments.

[0131] It should also be noted that, in this document, relational terms such as "first" and "second" are used only 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.

[0132] Those skilled in the art will further recognize that the units and algorithm steps of the various examples described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, computer software, or a combination of both. To clearly illustrate the interchangeability of hardware and software, the components and steps of the various examples have been generally described in terms of functionality in the foregoing description. Whether these functions are implemented in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementations should not be considered beyond the scope of this invention.

[0133] This article uses specific examples to illustrate the principles and implementation methods of the present invention. The descriptions of the above embodiments are only for the purpose of helping to understand the technical solutions and core ideas of the present invention. It should be noted that for those skilled in the art, several improvements and modifications can be made to the present invention without departing from the principles of the present invention, and these improvements and modifications also fall within the protection scope of the present invention.

Claims

1. A method for selecting and matching equipment materials, characterized in that, include: The N material components of the equipment are selected one by one in a set order; After determining any one of the material components to be selected, each optional model of the material component to be selected is displayed in a 3D view in the first display area of ​​the display interface, and the model and quantity of the material component to be selected are selected according to the user's operation instructions. Install the currently selected material components and display the installed status in a 3D view in the second display area of ​​the display interface; Wherein, N represents the total number of optional material components that the equipment can be equipped with, and N is a positive integer not less than 2; After determining any one of the material components to be selected, the process also includes: Based on a preset first compatibility rule for representing model restrictions between different types of material components, and the selection information of various material components currently selected, the optional models of the material components to be selected that do not conform to the first compatibility rule are filtered. Accordingly, displaying each optional model of the currently selected material component in a 3D view in the first display area of ​​the display interface includes: The first display area of ​​the display interface displays each of the remaining optional models of the material components to be selected after filtering in a 3D view. The step of selecting the model and quantity of the material components to be selected based on the user's operation instructions includes: The model of the material component to be selected is determined based on the user's first operation command; Based on the preset second compatibility rule for representing the quantity limits between different types of material components, the quantity limit value of the material component to be selected, and the selection information of the various material components currently selected, the selectable quantity values ​​of the material component to be selected are displayed. Based on the user's second operation command, select the quantity of the material component to be selected from the various selectable quantities displayed.

2. The method for selecting and matching equipment materials according to claim 1, characterized in that, Also includes: The device model information is displayed in the third display area of ​​the display interface; The name of the material component to be selected is displayed in the fourth display area of ​​the display interface.

3. The method for selecting and matching equipment materials according to claim 1, characterized in that, Also includes: After the user selects the model and quantity of the material component to be selected according to the user's operation instructions, the progress information is updated in the fifth display area of ​​the display interface; The progress information represents the percentage of the number of material component types that have been selected in the N material components of the equipment.

4. The method for selecting and matching equipment materials according to claim 1, characterized in that, Also includes: After all N material components have been selected, the total rated power consumption of the device is determined and displayed in the sixth display area of ​​the display interface.

5. The method for selecting and matching equipment materials according to any one of claims 1 to 4, characterized in that, Also includes: After all N material components have been selected, an exploded view of the device is displayed in the seventh display area of ​​the display interface.

6. A material selection system for equipment, characterized in that, include: The material component switching module is used to select N material components of the equipment one by one as the current material component to be selected in a set order. The optional display module is used to display each optional model of the material component to be selected in a 3D view in the first display area of ​​the display interface after any one material component to be selected is determined, and to select the model and quantity of the material component to be selected according to the user's operation instructions. The whole machine display module is used to install the currently selected material components and display the installed status in a 3D view in the second display area of ​​the display interface; Wherein, N represents the total number of optional material components that the equipment can be equipped with, and N is a positive integer not less than 2; After the optional display module determines any one of the material components to be selected, it also includes: The filtering module is used to filter out the optional models of the material components to be selected that do not conform to the first compatibility rule based on the preset first compatibility rule for representing the model restrictions between different types of material components and the selection information of the currently selected material components. Correspondingly, the optional display module displays each optional model of the currently selected material component in a 3D view in the first display area of ​​the display interface, including: The first display area of ​​the display interface displays each of the remaining optional models of the material components to be selected after filtering in a 3D view. The optional display module selects the model and quantity of the material components to be selected based on the user's operation instructions, including: The model of the material component to be selected is determined based on the user's first operation command; Based on the preset second compatibility rule for representing the quantity limits between different types of material components, the quantity limit value of the material component to be selected, and the selection information of the various material components currently selected, the selectable quantity values ​​of the material component to be selected are displayed. Based on the user's second operation command, select the quantity of the material component to be selected from the various selectable quantities displayed.

7. A material selection device for equipment, characterized in that, include: Memory, used to store computer programs; A processor for executing the computer program to implement the steps of the equipment material selection method as described in any one of claims 1 to 5.

8. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a computer program that, when executed by a processor, implements the steps of the equipment material selection method as described in any one of claims 1 to 5.

Citation Information

Patent Citations

  • Server assembling method, system and device

    CN113032858A