A Visualization Display Method and Device for Energy Power Planning Data
By combining energy power planning data with equipment type and application scenario information, 3D animation display data is produced, which solves the problems of large amount of data and low review efficiency in the existing technology, and improves the data display effect and user's desire to view.
Patent Information
- Application Number
- CN202210242289.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-03-11
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2042-03-11
AI Technical Summary
The visualization methods of existing energy power planning data are mainly displayed from the time dimension, resulting in large amount of data, low user review efficiency, and long-term viewing leads to increased fatigue, reducing the display effect and user's desire to view.
By receiving energy power planning data, determining the device type, finding application scenario information, using 3D animation modeling to create application models, and combining planning data to create visual animations to display them to users.
Reduce the amount of data that users need to view, improve review efficiency, reduce the fatigue of viewing data, improve the display effect of data, and increase the user's desire to view.
Smart Images

Figure CN114610947B_ABST
Abstract
Description
Background Art
[0002] In recent years, with the all-round development of China's social economy, the energy supply is facing many challenges such as the continuous growth of energy demand and electricity load, the diversification of load types, the increasing proportion of new energy, and the complexity of the grid structure. In order to meet the development needs of the new era, it is necessary to carry out electricity planning for new energy power sources, improve the proportion of new energy power sources while meeting the current electricity demand, and achieve the goal of green development.
[0003] After planning the energy power source using the background management system, it is often necessary to visualize the planned data so that users can manually review and manage the planned data to avoid planning omissions. Currently, the commonly used data visualization method is to analyze the user's electricity consumption data in the short term and long term, and then perform multi-dimensional data analysis and visualization display of the electricity consumption data from the time dimension, including geographical visualization of power data, interactive visualization of hierarchical data, and visualization of high-dimensional power data for users to review and view.
[0004] However, the currently commonly used visualization has the following technical problems: Since the basic data types of energy power source planning are numerous, the quantity is huge, and the sources are scattered, just visualizing and displaying data from the time dimension requires displaying a large amount of data. Users need to review a vast amount of data, resulting in low review efficiency. Moreover, during the viewing process, due to the large amount of data displayed, after viewing for a period of time, the fatigue feeling doubles, the display effect is poor, and the user's viewing desire is reduced. Summary of the Invention
[0005] The present invention provides a method and device for visualizing and displaying energy power source planning data. The method can use the planning data, its corresponding equipment, and the location to produce a display animation, and visually display the data in an animated way, thereby improving the display effect, reducing the fatigue feeling during viewing, and enhancing the user's viewing desire.
[0006] The first aspect of the embodiment of the present invention provides a method for visualizing and displaying energy power source planning data, and the method includes:
[0007] After receiving the planning data regarding the energy power source, determining the equipment type corresponding to the planning data;
[0008] Searching for the application scenario information of the equipment type in the application of the energy power source;
[0009] Using the application scenario information to perform 3D animation modeling to obtain an application model of the equipment;
[0010] Combining the application model with the planning data to produce and display a visualization animation.
[0011] In a possible implementation of the first aspect, the process of finding the application scenario information of the device type using the energy power source includes:
[0012] Finding the application location coordinates of the device corresponding to the device type;
[0013] Centered on the application location coordinates, obtaining several application scenario images of the device in the application site from the surroundings of the application location coordinates;
[0014] Obtaining and aggregating the environmental features of each application scenario image to obtain the application scenario information.
[0015] In a possible implementation of the first aspect, the process of using the application scenario information to perform 3D animation modeling to obtain an application model includes:
[0016] Based on the environmental features included in the application scenario information, finding the corresponding environmental object models to obtain multiple environmental object models;
[0017] Arbitrarily selecting one of the several application scenario images as the target scenario image;
[0018] According to the environmental features included in the target scenario image, splicing the multiple environmental object models into a scenario model of the device application;
[0019] Performing 3D animation processing on the scenario model to generate an application model.
[0020] In a possible implementation of the first aspect, the process of combining the application model with the planning data to produce and display a visualization animation includes:
[0021] Extracting several characteristic data values from the planning data;
[0022] Taking the numerical magnitudes of the several characteristic data values as the supply magnitudes of the energy power source, and editing the dynamic operations of the application model to form a visualization animation;
[0023] Sending the visualization animation to a preset cloud platform for the cloud platform to transmit to the connected user terminals to display the visualization animation to the users.
[0024] A second aspect of the embodiments of the present invention provides a visualization display device for energy power source planning data, and the device includes:
[0025] A determination module, configured to determine the device type corresponding to the planning data after receiving the planning data regarding the energy power source;
[0026] A search module, configured to search for the application scenario information of the device type using the energy power source;
[0027] A production module for performing 3D animation modeling using the application scenario information to obtain an application model of the device;
[0028] A display module for producing and displaying a visualization animation by combining the application model and the planning data.
[0029] In a possible implementation manner of the second aspect, the search module is further configured to:
[0030] Search for the application location coordinates of the device corresponding to the device type;
[0031] Centered on the application location coordinates, obtain several application scenario images of the device in the application site from the surroundings of the application location coordinates;
[0032] Obtain and aggregate the environmental features of each application scenario image to obtain application scenario information.
[0033] In a possible implementation manner of the second aspect, the production module is further configured to:
[0034] Based on the environmental features included in the application scenario information, search for corresponding environmental object models to obtain a plurality of environmental object models;
[0035] Arbitrarily select one of the several application scenario images as the target scenario image;
[0036] According to the environmental features included in the target scenario image, splice the plurality of environmental object models into a scenario model for device application;
[0037] Perform 3D animation processing on the scenario model to generate an application model.
[0038] In a possible implementation manner of the second aspect, the display module is further configured to:
[0039] Extract several feature data values from the planning data;
[0040] Taking the numerical magnitudes of the several feature data values as the supply magnitudes of the energy power source, edit the dynamic operations of the application model to form a visualization animation;
[0041] Send the visualization animation to a preset cloud platform for the cloud platform to transmit to the connected user terminals to display the visualization animation to the users.
[0042] Compared with the prior art, a visualization display method and device for energy power planning data provided by an embodiment of the present invention have the following beneficial effects: After predicting and sorting out the planning data, the present invention can determine the device type corresponding to the planning data, then find the application scenarios in which the device type uses energy power, and create corresponding 3D animations based on the application scenarios for users to view. On the one hand, it can reduce the amount of data viewed by users, improve the review efficiency, and on the other hand, it can reduce the fatigue of users viewing data, improve the data display effect, and increase the viewing desire of users. BRIEF DESCRIPTION OF THE DRAWINGS
[0043] Figure 1 is a schematic flowchart of a visualization display method for energy power planning data provided by an embodiment of the present invention;
[0044] Figure 2 is a schematic structural diagram of a visualization display device for energy power planning data provided by an embodiment of the present invention. DETAILED DESCRIPTION
[0045] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0046] The currently commonly used visualization has the following technical problems: Since the basic data types of energy power planning are numerous, large in quantity, and scattered in sources, visualizing and displaying data only from the time dimension requires displaying a large amount of data. Users need to review a vast amount of data, resulting in low review efficiency. Moreover, during the viewing process, due to the large amount of data displayed, after viewing for a period of time, the fatigue increases significantly, the display effect is poor, and the viewing desire of users is reduced.
[0047] To solve the above problems, the following specific embodiments will be used to introduce and explain in detail a visualization display method for energy power planning data provided by an embodiment of the present application.
[0048] Referring to Figure 1 , a schematic flowchart of a visualization display method for energy power planning data provided by an embodiment of the present invention is shown.
[0049] Among them, by way of example, the visualization display method for the energy power planning data may include:
[0050] S11. After receiving the planning data regarding energy power, determine the device type corresponding to the planning data.
[0051] In one embodiment, planning data regarding an energy power source over a period of time can be obtained from a background server.
[0052] In actual operation, planning data regarding a new energy power source for multiple devices or any one device in a certain area over a future period of time can be obtained.
[0053] For example, the planning data can be the planning data of the new energy power source for the waste incinerator in the waste treatment plant on XX Road, XX District, XX City. For another example, the planning data can be the planning data of the new energy power source for equipment such as cement mixers, cranes, and pile drivers at a construction site on XX Road, XX District, XX City. For yet another example, the planning data can be the planning data of the new energy power source for each factory building on XX Road, XX District, XX City in the first quarter of 202x.
[0054] After obtaining the planning data, the device type corresponding to the planning data can be determined from information such as the electricity consumption amount, power consumption scale, and the object of use of the planning data. For example, if the planning data is for a large amount of continuous electricity consumption, the device type can be a high-voltage electricity-consuming device with a large capacity; if the planning data is for low electricity and intermittent electricity consumption, the device type can be a low-voltage electricity-consuming device with a small capacity.
[0055] Optionally, it is also possible to find the object corresponding to the planning data, such as information about a factory, company, or area, and determine the previous device type based on its historical information, so as to obtain the device type corresponding to this planning data.
[0056] S12. Search for application scenario information of the device type when using the energy power source.
[0057] In one embodiment, after determining the device type, it is possible to search for content such as the usage scenario when a device of this device type uses a new energy power source, so as to obtain application scenario information.
[0058] The application scenario information can be used to create a corresponding display image for the device for the user to view.
[0059] In order to conform to the actual usage scenario of the device, in an alternative embodiment, step S12 may include the following sub-steps:
[0060] Sub-step S121. Search for the application location coordinates of the device corresponding to the device type.
[0061] Specifically, the application location coordinates can be the current location coordinates of the device corresponding to the device type, or the location coordinates when the device is in use.
[0062] Sub-step S122: Taking the application location coordinates as the center, obtain several application scenario images of the device in the application site from the surroundings of the application location coordinates.
[0063] Specifically, the environmental images around the center can be collected with the application location coordinates as the center, so as to obtain several application scenario images of the device in the application site. The specific collection method can be like the panoramic function in the map application. After determining the coordinate point of the center, it can rotate 360 degrees around the coordinate point of the center to obtain the environmental images of the surroundings.
[0064] Sub-step S123: Obtain and aggregate the environmental features of each of the application scenario images to obtain application scenario information.
[0065] In one implementation, several environmental features of each application scenario image can be obtained respectively, and then the several environmental features corresponding to each application scenario image are aggregated together to obtain application scenario information.
[0066] Among them, the environmental features can be information such as the objects contained in the image, the size of the objects, color, position, quantity, etc.
[0067] By collecting the images around the device and then obtaining the corresponding objects and their color, size, position and other information from the images, the actual application scenario of the device can be restored based on the above various information, thereby improving the authenticity of the produced video or animation.
[0068] S13: Use the application scenario information to perform 3D animation modeling to obtain the application model of the device.
[0069] In one embodiment, 3D animation modeling can be performed based on various environmental features and object features in the application scenario information to produce multiple animation models, and then the multiple animation models are assembled to form the application model to truly restore the application scenario of the device.
[0070] In order to accurately restore the actual application scenario of the device, in one of the embodiments, step S13 may include the following sub-steps:
[0071] Sub-step S131: Based on the environmental features included in the application scenario information, search for the corresponding environmental object models to obtain multiple environmental object models.
[0072] Specifically, based on the objects in the environment, search for the corresponding object models in the preset animation model library, and render and adjust the object models according to their color, size and other features, so as to obtain the corresponding environmental object models.
[0073] For example, if the object with environmental features is a grayish-white transformer that is one meter wide, the object model of the transformer can be searched for, and then its size can be adjusted and rendered in grayish-white to obtain the environmental object model corresponding to the transformer.
[0074] Sub-step S132: Arbitrarily select one of the several application scenario images as the target scenario image.
[0075] Since each application scenario image is a peripheral environment image at an arbitrary angle centered on the device, and several application scenario images can form the overall environment of the device. If an animation model is made according to its overall environment, it takes a long time and the production efficiency is low. On the premise of showing the application scenario of the device, to improve the production efficiency of the animation, an application scenario image can be arbitrarily selected as the target scenario image to show the application scenario of the device at an arbitrary angle.
[0076] Sub-step S133: According to the environmental features included in the target scenario image, splice the multiple environmental object models into a scenario model for device application.
[0077] Specifically, the environmental features included in the target scenario image can be recognized again, and then the objects corresponding to the environmental features included in the target scenario image can be determined. Based on the objects included in the target scenario image, several corresponding environmental object models are selected from the multiple environmental object models, and then the several environmental object models are spliced and matched to form a scenario model when the device is in use.
[0078] For example, the power-consuming devices are various large power-consuming devices in the construction site of a building complex, such as cranes, cement mixers, etc. Their application scenario is at the construction site, where there are 6 under-construction buildings and 2 community shopping malls. In a selected target scenario image, there are 3 under-construction buildings and 1 community shopping mall, and the 3 buildings and 1 community shopping mall are arranged in a line from left to right. Then, the environmental object models of 3 buildings and 1 community shopping mall can be selected from the multiple environmental object models, and then the environmental object models of 3 buildings and 1 community shopping mall are arranged in a line from left to right to form a scenario model when the substation is in use.
[0079] Sub-step S134: Perform 3D animation processing on the scenario model to generate an application model.
[0080] In one embodiment, after editing the scenario model when the device is in use, the scenario model can be converted into a 3D animation to generate a 3D application model.
[0081] S14: Combine the application model with the planning data to produce and display a visualization animation.
[0082] After creating a 3D application model, it is possible to render and adjust the entire 3D application model based on the planning data to form a visual 3D animation and display this animation to the user for viewing.
[0083] In one embodiment, step S14 may include the following sub-steps:
[0084] Sub-step S141: Extract a number of characteristic data values from the planning data.
[0085] In one embodiment, the characteristic data values may be the maximum value, minimum value, average value, etc.
[0086] Specifically, a part can be intercepted from the planning data, and then characteristic values such as its peak value, maximum value, minimum value, and time are extracted.
[0087] Sub-step S142: Use the numerical magnitudes of the number of characteristic data values as the supply magnitudes of the energy power source to edit the dynamic operations of the application model to form a visual animation.
[0088] In one embodiment, the numerical magnitudes of the characteristic data values can be used as the supply magnitudes of the energy power source to render and edit the working state of the application model under the supply of the above energy power source, and edit and render its corresponding dynamic operations to form a visual animation.
[0089] Continuing with the above example, the application model is a construction site, and the characteristic data values include the maximum value, minimum value, and average value. Under the supply of the energy power source at the maximum value, its dynamic operation can be that the buildings and shopping malls on the construction site are being built very rapidly; under the supply of the energy power source at the minimum value, its dynamic operation can be that the buildings and shopping malls on the construction site are being built very slowly; under the supply of the energy power source at the average value, its dynamic operation can be that the buildings and shopping malls on the construction site are being built gradually.
[0090] The effects of the above three dynamic operations of very rapid, very slow, and gradual construction are equivalent to playing a video at 2 times the speed, 0.5 times the speed, and normal speed.
[0091] Similarly, if the application model is a community that is already complete and has residents, the characteristic data values also include the maximum value, minimum value, and average value. Under the supply of the energy power source at the maximum value, its dynamic operation can be that the residents in the community move rapidly or the lighting in the community is bright and flashes frequently; under the supply of the energy power source at the minimum value, its dynamic operation can be that the residents in the community move slowly or the lighting in the community is weak and flashes occasionally; under the supply of the energy power source at the average value, its dynamic operation can be that the residents in the community move at a normal speed or the lighting in the community is normal and does not flash.
[0092] In actual operation, the rendering effect can be adjusted according to actual needs and the actual application scenarios of the application model.
[0093] Sub-step S143: Send the visualization animation to a preset cloud platform for the cloud platform to transmit it to the connected user terminals to display the visualization animation to the users.
[0094] After making the visualization animation, the visualization animation can be sent to a preset cloud platform. The cloud platform can be communicatively connected to multiple user terminals, and various data and information can be sent to the user terminals through the cloud platform.
[0095] The cloud platform can forward the visualization animation to the user terminals, enabling the users to view the corresponding visualization animation through the user terminals, conduct corresponding reviews, and determine the application changes after using the planning data to enhance the interest of the reviews.
[0096] In this embodiment, the embodiment of the present invention provides a method for visualizing energy power planning data. Its beneficial effects are as follows: After predicting and sorting out the planning data, the present invention can determine the device type corresponding to the planning data, then find the application scenarios of the device type in using energy power, and make corresponding 3D animations based on the application scenarios for users to view. On the one hand, it can reduce the amount of data viewed by users and improve the review efficiency. On the other hand, it can reduce the fatigue of users viewing data, improve the display effect of the data, and increase the viewing desire of users.
[0097] The embodiment of the present invention also provides a device for visualizing energy power planning data. Referring to FIG. 2, it shows a schematic structural diagram of a device for visualizing energy power planning data provided by an embodiment of the present invention.
[0098] Among them, by way of example, the device for visualizing energy power planning data may include:
[0099] A determination module 201, configured to determine the device type corresponding to the planning data after receiving the planning data regarding energy power;
[0100] A search module 202, configured to search for the application scenario information of the device type in using energy power;
[0101] A production module 203, configured to perform 3D animation modeling using the application scenario information to obtain an application model of the device;
[0102] A display module 204, configured to combine the application model with the planning data to produce and display a visualization animation.
[0103] Optionally, the search module is further configured to:
[0104] Search for the application location coordinates of the device corresponding to the device type;
[0105] Taking the application location coordinates as the center, obtain several application scenario images of the device in the application site from the surroundings of the application location coordinates;
[0106] Obtain and aggregate the environmental features of each of the application scenario images to obtain application scenario information.
[0107] Optionally, the production module is further configured to:
[0108] Based on the environmental features included in the application scenario information, search for corresponding environmental object models to obtain multiple environmental object models;
[0109] Arbitrarily select one of the several application scenario images as the target scenario image;
[0110] According to the environmental features included in the target scenario image, splice the multiple environmental object models into a scenario model for device application;
[0111] Perform 3D animation processing on the scenario model to generate an application model.
[0112] Optionally, the display module is further configured to:
[0113] Extract several feature data values from the planning data;
[0114] Taking the numerical magnitudes of the several feature data values as the supply magnitudes of the energy power source, edit the dynamic operations of the application model to form a visual animation;
[0115] Send the visual animation to a preset cloud platform for the cloud platform to transmit to the connected user terminals to display the visual animation to the users.
[0116] Those skilled in the art can clearly understand that for the sake of convenient description and brevity, the specific working process of the device described above can refer to the corresponding process in the foregoing method embodiment and will not be elaborated herein.
[0117] Furthermore, an embodiment of the present application further provides an electronic device, including: a memory, a processor, and a computer program stored on the memory and executable on the processor, and when the processor executes the program, it implements the method for visual display of energy power source planning data as described in the above embodiment.
[0118] Furthermore, the embodiment of the present application also provides a computer-readable storage medium storing computer-executable instructions for causing a computer to execute the method for visual display of energy power planning data as described in the above embodiment.
[0119] The above is the preferred embodiment of the present invention. It should be noted that for those of ordinary skill in the art, several improvements and refinements can be made without departing from the principle of the present invention, and these improvements and refinements are also considered within the protection scope of the present invention.
Claims
1. A method for visual display of energy power planning data, characterized in that The method includes: After receiving the planning data regarding the energy power supply, determining the device type corresponding to the planning data; Searching for the application scenario information of the device type in the use of the energy power supply; Using the application scenario information to perform 3D animation modeling to obtain the application model of the device; Combining the application model with the planning data to produce and display a visualization animation; The searching for the application scenario information of the device type in the use of the energy power supply includes: Searching for the application location coordinates of the device corresponding to the device type; Taking the application location coordinates as the center, obtaining several application scenario images of the device in the application site from the surroundings of the application location coordinates; Obtaining and aggregating the environmental features of each of the application scenario images to obtain the application scenario information; The using the application scenario information to perform 3D animation modeling to obtain the application model includes: Based on the environmental features included in the application scenario information, searching for the corresponding environmental object models to obtain multiple environmental object models; Arbitrarily selecting one of the several application scenario images as the target scenario image; According to the environmental features included in the target scenario image, splicing the multiple environmental object models into the scenario model of the device application; Performing 3D animation processing on the scenario model to generate the application model.
2. The visualization display method of energy power supply planning data according to claim 1, wherein The combining the application model with the planning data to produce and display a visualization animation includes: Extracting several characteristic data values from the planning data; Taking the numerical magnitudes of the several characteristic data values as the supply magnitude of the energy power supply, and editing the dynamic operations of the application model to form a visualization animation; Sending the visualization animation to a preset cloud platform for the cloud platform to transmit to the connected user terminals to display the visualization animation to the users.
3. A visualization display device for energy power planning data, characterized in that, The device includes: A determination module, configured to determine the device type corresponding to the planning data after receiving the planning data regarding the energy power supply; A search module, configured to search for the application scenario information of the device type in the use of the energy power supply; A production module, configured to use the application scenario information to perform 3D animation modeling to obtain the application model of the device; A display module, configured to combine the application model with the planning data to produce and display a visualization animation; The search module is further configured to: Search for the application location coordinates of the device corresponding to the device type; Taking the application location coordinates as the center, obtaining several application scenario images of the device in the application site from the surroundings of the application location coordinates; Obtaining and aggregating the environmental features of each of the application scenario images to obtain the application scenario information; The production module is further configured to: Based on the environmental features included in the application scenario information, searching for the corresponding environmental object models to obtain multiple environmental object models; Arbitrarily selecting one of the several application scenario images as the target scenario image; According to the environmental features included in the target scenario image, splicing the multiple environmental object models into the scenario model of the device application; Performing 3D animation processing on the scenario model to generate the application model.
4. The visualization display device for energy power planning data according to claim 3, wherein, The display module is further configured to: Extract several characteristic data values from the planning data; Taking the numerical magnitudes of the several characteristic data values as the supply magnitudes of the energy power source, edit the dynamic operations of the application model to form a visualized animation; Send the visualized animation to a preset cloud platform for the cloud platform to transmit it to the connected user terminals to display the visualized animation to the users.
5. An electronic device, comprising: A memory, a processor, and a computer program stored on the memory and executable on the processor, wherein when the processor executes the program, it implements the method for visual display of energy power source planning data as described in any one of claims 1-2.
6. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores computer-executable instructions for causing a computer to execute the method for visual display of energy power source planning data as described in any one of claims 1-2.
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