Distribution station optimization control method and device

By constructing a multi-heterogeneous model and performing fusion processing, the data integration problem in the distribution station monitoring system was solved, the visual display of the power system and rapid problem location were achieved, ensuring the safety of the power system.

CN118484550BActive Publication Date: 2025-09-09安徽征途电气有限公司
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Patent Information

Application Number
CN202410751199.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-06-12
Publication Date
2025-09-09
Estimated Expiration
2044-06-12

AI Technical Summary

Technical Problem

Existing distribution station monitoring systems are unable to effectively integrate and display different types of data, making it difficult for users to intuitively understand the operating status of the power system, increasing the time cost of handling anomalies and delaying the handling of safety issues.

Method used

By obtaining the transmission line information in the power network diagram of the distribution station, a multi-dimensional heterogeneous model is constructed. By combining sound, image and text information, an initial heterogeneous model is generated, and structured and data fusion processing is performed to intuitively display abnormal equipment and moments.

Benefits of technology

It realizes the visual integration display of the power system, allowing users to quickly locate problematic equipment and time, improving data processing efficiency and ensuring the safe operation of the power system.

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Patent Text Reader

Abstract

The present invention provides a distribution station optimization control method and device, which obtain multiple transmission lines in the power network diagram of the distribution station, receive multivariate customized information of each transmission line from a power monitoring terminal; determine a reference structure according to the morphological information of the transmission lines, and construct a multivariate heterogeneous model corresponding to each transmission line based on the multivariate customized information and the reference structure; obtain power monitoring data of the transmission line at multiple monitoring moments, process the power monitoring data according to the multivariate heterogeneous model, and generate an initial heterogeneous model corresponding to each monitoring moment; receive a fusion requirement from the power monitoring terminal, perform structured fusion and data fusion processing on the initial heterogeneous models at the corresponding monitoring moments according to the fusion requirement, generate a heterogeneous fusion model, and send it to the power monitoring terminal.
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Description

Technical Field

[0001] The present invention relates to data processing technology, and in particular to a distribution station optimization control method and device. Background Art

[0002] Distribution stations deliver electricity to power-consuming equipment or user sites, are connected to transformer substations above and power-consuming equipment below, and are mostly used for dispatching, dispatching lines, and balancing the loads of lines. Therefore, distribution stations have a large number of transmission lines connected to power equipment to maintain the stable operation of the power system in the distribution stations. Therefore, it is extremely important to monitor each device in real time during the operation of the distribution station, analyze the equipment operation through relevant data information, and send the detection data information to relevant personnel for review and timely maintenance to ensure the safe operation of the distribution station.

[0003] At present, traditional monitoring systems mainly rely on numerical data and alarm signals, and are unable to effectively integrate and display different types of data. The lack of intuitive visual display makes it difficult for users to intuitively understand the operating status of the distribution station power system. Especially when abnormal situations occur, users often need to conduct tedious data analysis to determine the abnormal equipment and causes, which not only increases the time cost of handling abnormalities, but also delays the handling of power system safety issues.

[0004] Therefore, how to visualize and integrate data based on the actual status of the distribution station transmission lines so that users can more intuitively view the operating status of the power system and facilitate timely handling of distribution station power system safety issues has become an urgent problem to be solved. Summary of the Invention

[0005] The embodiment of the present invention provides a distribution station optimization control method and device, which visualizes and integrates data based on the actual status of the distribution station transmission line, so that users can more intuitively view the operating status of the power system, facilitate timely handling of distribution station power system safety issues, and facilitate timely handling of power system safety issues.

[0006] According to a first aspect of an embodiment of the present invention, a method for optimizing and controlling a distribution station is provided, comprising:

[0007] Acquire multiple transmission lines in a power network diagram of a distribution station, and receive multi-dimensional customized information about each of the transmission lines from a power monitoring terminal, wherein the multi-dimensional customized information includes at least one of sound information, image information, and text information;

[0008] Determining a reference structure according to the morphological information of the transmission line, and constructing a multivariate heterogeneous model corresponding to each of the transmission lines based on the multivariate customized information and the reference structure;

[0009] Acquiring power monitoring data of the transmission line at multiple monitoring moments, processing the power monitoring data according to the multivariate heterogeneous model, and generating an initial heterogeneous model corresponding to each of the monitoring moments;

[0010] Receive the fusion requirements of the power monitoring terminal, perform structured fusion and data fusion processing on the initial heterogeneous models at the corresponding monitoring moment according to the fusion requirements, generate a heterogeneous fusion model and send it to the power monitoring terminal.

[0011] Optionally, in a possible implementation of the first aspect, determining a reference structure according to the morphological information of the transmission lines, and constructing a multivariate heterogeneous model corresponding to each of the transmission lines based on the multivariate customized information and the reference structure, includes:

[0012] Acquire the morphological information of the transmission line and the multi-dimensional customized information, and construct a reference structure consistent with the morphological structure of the transmission line based on the morphological information, wherein the reference structure has a plurality of power devices;

[0013] Constructing reference structures corresponding to the respective multi-component customized information in the power transmission line as information display structures for the respective multi-component customized information, and sequentially arranging the information display structures in parallel based on preset intervals to obtain an information display area for the power transmission line;

[0014] A reference structure is arranged in parallel below the information display area based on a preset interval as a fusion display structure, and the multiple customized information of the transmission line is bound to the fusion display structure;

[0015] According to the information display area and the fusion display structure, a multivariate heterogeneous model corresponding to each of the transmission lines is obtained.

[0016] Optionally, in a possible implementation of the first aspect, before the step of acquiring the power monitoring data of the transmission line at multiple monitoring moments, the method further includes:

[0017] Extracting multiple monitoring moments of the transmission line, and acquiring real-time monitoring data corresponding to the monitoring device of each of the power equipment on the transmission line based on the monitoring moments, wherein the monitoring device of each of the power equipment has corresponding standard monitoring data;

[0018] When it is determined that the real-time monitoring data is not equal to the corresponding standard monitoring data, the corresponding real-time monitoring data is used as power monitoring data.

[0019] Optionally, in a possible implementation of the first aspect, obtaining power monitoring data of the transmission line at multiple monitoring moments, processing the power monitoring data according to the multivariate heterogeneous model, and generating an initial heterogeneous model corresponding to each of the monitoring moments includes:

[0020] Acquiring power monitoring data of the transmission line at multiple monitoring moments, and determining the corresponding power equipment as an abnormal equipment based on the power monitoring data;

[0021] According to the abnormal device, a corresponding device area is determined in the multivariate heterogeneous model as a retained area, and the remaining device areas are determined as deleted areas, wherein the power equipment in the multivariate heterogeneous model has a corresponding device area;

[0022] The multivariate heterogeneous model is processed based on the deleted region to obtain an initial heterogeneous model corresponding to each monitoring moment.

[0023] Optionally, in a possible implementation of the first aspect, the processing the multivariate heterogeneous model based on the deleted region to obtain the initial heterogeneous model corresponding to each monitoring moment includes:

[0024] Deleting and updating the multivariate heterogeneous model based on the deleted region to obtain an abnormal display model, and obtaining an unconnected region in the abnormal display model as a connection region;

[0025] When it is determined that the number of the connection areas is greater than 1, an adjacent connection strategy is called to connect two adjacent connection areas to obtain an initial heterogeneous model corresponding to each monitoring moment;

[0026] When it is determined that the number of the connection areas is greater than 1, an adjacent connection strategy is called to connect two adjacent connection areas to obtain an initial heterogeneous model corresponding to each monitoring moment, including:

[0027] When it is determined that the number of the connected areas is greater than 1, obtaining the midpoints of two adjacent connected areas, and using the closest endpoints of the midpoints as positioning points;

[0028] Obtaining a perpendicular line connecting the positioning points as a reference line, and moving the connecting areas on both sides of the reference line toward the reference line until the distance between the positioning points and the reference line is less than a preset distance;

[0029] The information display structures of the same multivariate customized information located on both sides of the reference line are connected to each other to obtain the initial heterogeneous models corresponding to each monitoring moment.

[0030] Optionally, in a possible implementation of the first aspect, the receiving a fusion requirement from the power monitoring terminal, performing structured fusion and data fusion processing on the initial heterogeneous models at the corresponding monitoring moment according to the fusion requirement, and generating a heterogeneous fusion model to send to the power monitoring terminal includes:

[0031] receiving a fusion requirement from the power monitoring terminal, and performing structural fusion on the initial heterogeneous models at the corresponding monitoring moment according to the fusion requirement to generate a heterogeneous display model corresponding to the transmission line;

[0032] According to the fusion requirement, data fusion processing is performed on the multi-dimensional customized information corresponding to the fusion display structure in the heterogeneous display model to generate heterogeneous display data corresponding to the transmission line;

[0033] A heterogeneous fusion model is generated according to the heterogeneous display model and the heterogeneous display data and sent to the power monitoring terminal.

[0034] Optionally, in a possible implementation of the first aspect, the receiving a fusion requirement from the power monitoring terminal, and performing structured fusion on the initial heterogeneous models at corresponding monitoring moments according to the fusion requirement to generate a heterogeneous display model corresponding to the transmission line includes:

[0035] receiving a fusion requirement from the power monitoring terminal, and retrieving a display timeline according to the fusion requirement, where the display timeline includes multiple monitoring moments;

[0036] The initial heterogeneous model is set at a corresponding monitoring moment on the display time axis to generate a heterogeneous display model corresponding to the transmission line.

[0037] Optionally, in a possible implementation of the first aspect, performing digital fusion processing on the multi-dimensional customized information corresponding to the fusion display structure in the heterogeneous display model according to the fusion requirement to generate heterogeneous display data corresponding to the transmission line includes:

[0038] Acquire the multi-dimensional customized information bound to the fusion display structure in the heterogeneous display model according to the fusion requirement;

[0039] When it is determined that the multi-dimensional customized information includes image information, the image information in the multi-dimensional customized information is used as reference information, and the remaining information in the multi-dimensional customized information is used as additional information;

[0040] Performing data fusion processing on the reference information and the additional information to generate heterogeneous display data corresponding to the transmission line;

[0041] When it is determined that the multi-dimensional customized information does not have image information, a data fusion process is performed based on a preset image and the multi-dimensional customized information to generate heterogeneous display data corresponding to the power transmission line.

[0042] Optionally, in a possible implementation manner of the first aspect, performing digital fusion processing on the baseline information and the additional information to generate heterogeneous display data corresponding to the transmission line includes:

[0043] Constructing an image frame according to the reference information, and generating an audio axis based on the sound information when determining that the additional information is sound information and / or text information; and / or

[0044] constructing a text filling slot in the image frame based on the text information, filling the text information into the text filling slot, and generating heterogeneous display data;

[0045] When it is determined that the multi-dimensional customized information does not have image information, performing data fusion processing based on a preset image and the multi-dimensional customized information to generate heterogeneous display data corresponding to the power transmission line includes:

[0046] When it is determined that the multi-dimensional customized information does not have image information, constructing an image frame according to a preset image; when it is determined that the multi-dimensional customized information is sound information and / or text information, generating an audio axis based on the sound information; and / or

[0047] A text filling slot is constructed in the image frame based on the text information, and the text information is filled into the text filling slot to generate heterogeneous display data.

[0048] A second aspect of an embodiment of the present invention provides a distribution station optimization control device, including:

[0049] an acquisition module, configured to acquire a plurality of transmission lines in a power network diagram of a distribution station, and receive multi-dimensional customized information on each of the transmission lines from a power monitoring terminal, wherein the multi-dimensional customized information includes at least one of sound information, image information, and text information;

[0050] A construction module, configured to determine a reference structure according to the morphological information of the transmission line, and to construct a multivariate heterogeneous model corresponding to each of the transmission lines based on the multivariate customized information and the reference structure;

[0051] a processing module, configured to obtain power monitoring data of the transmission line at a plurality of monitoring moments, process the power monitoring data according to the multivariate heterogeneous model, and generate an initial heterogeneous model corresponding to each of the monitoring moments;

[0052] A generation module is used to receive the fusion requirements of the power monitoring terminal, perform structured fusion and data fusion processing on the initial heterogeneous models at the corresponding monitoring time according to the fusion requirements, generate a heterogeneous fusion model and send it to the power monitoring terminal.

[0053] According to a third aspect of an embodiment of the present invention, an electronic device is provided, comprising: a memory, a processor, and a computer program, wherein the computer program is stored in the memory, and the processor runs the computer program to execute the first aspect of the present invention and various methods that may be involved in the first aspect.

[0054] According to a fourth aspect of an embodiment of the present invention, a storage medium is provided, in which a computer program is stored. When the computer program is executed by a processor, it is used to implement the first aspect of the present invention and various methods that may be involved in the first aspect.

[0055] The beneficial effects of the present invention are as follows:

[0056] 1. The present invention generates a multivariate heterogeneous model for intuitive display to users based on the actual shape of the transmission lines in the power network diagram and the monitored multivariate customized information, and processes the multivariate heterogeneous model through abnormal power monitoring data to generate an initial heterogeneous model for intuitive viewing by users. All initial heterogeneous models are structured and fused in a digital manner to facilitate user viewing and visualize the data. Users can directly locate transmission lines, abnormal equipment and abnormal moments with problems in the power network diagram, so that users can handle safety issues in the power system more quickly.

[0057] 2. The present invention can delete the area of ​​the power equipment without problems in the multi-heterogeneous model, so that only the equipment area with problems is retained to generate an initial heterogeneous model, so that personnel can intuitively and quickly check that the power equipment at the corresponding position in the transmission line has an abnormality, so that personnel can quickly and promptly deal with the relevant equipment to ensure the safe operation of the power system. In addition, the present invention can also reduce the data processing volume and improve data processing efficiency by obtaining the power monitoring data corresponding to the monitoring time. At the same time, the present invention can also connect adjacent connection areas when the connection area is greater than 1, so as to centrally display the data information at multiple abnormal positions, thereby facilitating personnel to quickly view.

[0058] 3. The present invention can perform structured fusion and data fusion processing on the initial heterogeneous models at different monitoring moments according to the fusion requirements, so that personnel can intuitively view the corresponding power equipment with abnormal conditions through the generated heterogeneous fusion model, and quickly view the abnormal data at the corresponding different monitoring moments. The present invention can call out a display timeline with multiple monitoring moments, and realize the display of the initial heterogeneous model on the timeline of the corresponding moment, so as to facilitate personnel viewing. The present invention can obtain the multi-dimensional customized information corresponding to the transmission line, and based on the differences in the multi-dimensional customized information, customize the generation of corresponding heterogeneous display data, so that personnel can quickly view the various abnormal data information corresponding to the abnormal equipment in the transmission line, so that personnel can take relevant measures in time to ensure the safe operation of the power system. BRIEF DESCRIPTION OF THE DRAWINGS

[0059] Figure 1 A schematic diagram of an application scenario of the technical solution provided by the present invention;

[0060] Figure 2 This is a flow chart of a distribution station optimization control method provided by the present invention;

[0061] Figure 3 A schematic diagram of a multi-heterogeneous model provided by the present invention;

[0062] Figure 4 A schematic diagram of a device area provided by the present invention;

[0063] Figure 5 A schematic diagram of a positioning point provided by the present invention;

[0064] Figure 6 This is a structural schematic diagram of a distribution station optimization control device provided by the present invention.

[0065] Figure 7 A schematic diagram of the hardware structure of an electronic device provided by the present invention. DETAILED DESCRIPTION

[0066] To make the objectives, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts shall fall within the scope of protection of the present invention.

[0067] The terms "first," "second," "third," "fourth," and so forth (if any) in the description and claims of the present invention and in the accompanying drawings are used to distinguish similar items and are not necessarily used to describe a particular order or sequential sequence. It should be understood that the terms used in this manner are interchangeable where appropriate, such that the embodiments of the present invention described herein can be practiced in sequences other than those illustrated or described herein.

[0068] It should be understood that in various embodiments of the present invention, the size of the sequence number of each process does not mean the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of the present invention.

[0069] It should be understood that in the present invention, "include" and "have" and any variations thereof are intended to cover non-exclusive inclusions. For example, a process, method, system, product or apparatus that includes a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to these processes, methods, products or apparatuses.

[0070] It should be understood that in the present invention, "multiple" refers to two or more. "And / or" is only a description of the association relationship of associated objects, indicating that three relationships can exist. For example, A and / or B can represent: A exists alone, A and B exist at the same time, and B exists alone. The character " / " generally indicates that the previous and next associated objects are in an "or" relationship. "Contains A, B and C", "Contains A, B, C" means that A, B, and C are all included, "Contains A, B or C" means that one of A, B, and C is included, and "Contains A, B and / or C" means that any one, any two, or any three of A, B, and C are included.

[0071] It should be understood that, in the present invention, "B corresponding to A," "B corresponding to A," "A corresponds to B," or "B corresponds to A" means that B is associated with A and B can be determined based on A. Determining B based on A does not mean determining B based solely on A; B can also be determined based on A and / or other information. A and B match when the similarity between A and B is greater than or equal to a preset threshold.

[0072] Depending on the context, "if" as used herein may be interpreted as "when" or "when" or "in response to determining" or "in response to detecting."

[0073] The following specific embodiments are used to describe the technical solution of the present invention in detail. The following specific embodiments can be combined with each other, and the same or similar concepts or processes may not be described in detail in some embodiments.

[0074] like Figure 1 The figure shows a scenario diagram of the technical solution provided by the present invention, which mainly includes a power monitoring terminal, a server for processing data information, and a monitoring device in a transmission line. The power monitoring terminal can be interconnected with the server, so that the server can receive the requirements on the power monitoring terminal, thereby processing the data, and transmitting the processed data information to the power monitoring terminal, so that the personnel at the power monitoring terminal can view the relevant data information and process it in a timely manner. Similarly, the monitoring device in the transmission line is associated with the server, so that the server can process the monitoring data of the equipment and transmit it to the power monitoring terminal, so that the power monitoring terminal can intuitively view the monitoring data. The present invention will only display the abnormal data at the corresponding time without changing the form of the transmission line, so that personnel can visually view the abnormal data and the lines and equipment where the abnormality occurs.

[0075] The present invention provides a distribution station optimization control method, such as Figure 2 As shown, it includes steps S1-S4:

[0076] S1, obtaining multiple transmission lines in the power network diagram of the distribution station, and receiving multi-customized information of each transmission line from the power monitoring terminal, wherein the multi-customized information includes at least one of sound information, image information and text information.

[0077] In actual applications, the installation of transmission circuits in distribution stations is extremely complex and intertwined, so the transmission lines in the power network diagram obtained based on the actual power layout are also complex and intertwined. Therefore, multiple transmission lines will be obtained, and because the transmission position or equipment of each transmission line is different, the demand for monitoring data of different transmission lines will also be different. Then, corresponding multi-customized information can be set for different transmission lines on the power monitoring end. Therefore, the multi-customized information of each transmission line can be one or more types, so that the corresponding power monitoring data can be transmitted to the power monitoring end in the future by receiving the multi-customized information from the power monitoring end.

[0078] It can be understood that the power network diagram is a connection network diagram for power transmission from distribution stations, the transmission line is the line for transmitting power, the power monitoring terminal is the terminal for personnel monitoring power transmission, which can be a mobile phone or a computer, and the multi-customized information can be the monitoring demand information of the power monitoring terminal on the transmission line, which can include at least one of sound information, image information and text information, and the sound information can be audio information, for example, when the detection device is a buzzer, it can emit sound information, the image information can be a captured image or an infrared temperature image, and the text information can be text data information such as temperature, humidity, etc. transmitted by the monitoring sensor on the transmission line. For example, some equipment on the transmission line only needs to detect image information, then the user can customize only the monitoring image information for the corresponding transmission line.

[0079] Through the above-mentioned implementation manner, the present invention can customize the configuration of corresponding multi-dimensional customized information for the transmission lines between the distribution stations, so as to facilitate the subsequent monitoring and processing of the corresponding information and send it to the power monitoring terminal.

[0080] S2, determining a reference structure according to the morphological information of the transmission line, and constructing a multivariate heterogeneous model corresponding to each of the transmission lines based on the multivariate customized information and the reference structure.

[0081] It should be noted that since the display shapes of each transmission line in the power network diagram are different, in order to enable the subsequent power monitoring end to intuitively determine the transmission line corresponding to the model data by receiving the model, a reference structure of the corresponding shape can be constructed based on the display shape of the transmission line.

[0082] It can be understood that the morphological information is the information of the display shape of the transmission line in the power network diagram, which can be straight line, curved, etc., which is specifically determined by the actual shape of the transmission line. The reference structure is the structure constructed based on the transmission line.

[0083] Through the above-mentioned implementation, the present invention obtains the corresponding multivariate heterogeneous model, and realizes the visualization of abnormal conditions of the transmission line for the convenience of intuitive viewing by personnel.

[0084] In some embodiments, step S2 (determining a reference structure according to the morphological information of the transmission line, and constructing a multivariate heterogeneous model corresponding to each of the transmission lines based on the multivariate customized information and the reference structure) includes S21-S24:

[0085] S21, acquiring the morphological information of the transmission line and the multi-dimensional customized information, and constructing a reference structure consistent with the morphological form of the transmission line based on the morphological information, wherein the reference structure has a plurality of power devices.

[0086] It can be understood that in the process of line transmission of electric power, each transmission line has corresponding multiple power equipment to supply power to the power equipment. Therefore, the corresponding reference structure also has multiple power equipment with the same position, and the corresponding abnormal power equipment will be judged, so as to process the reference structure and perform visual display.

[0087] Among them, power equipment refers to equipment in transmission lines.

[0088] S22, constructing a reference structure corresponding to each of the multiple customized information in the transmission line as an information display structure of each of the multiple customized information, and arranging the information display structures in parallel in sequence based on preset intervals to obtain an information display area of ​​the transmission line.

[0089] It can be understood that when the multi-customized information in the transmission line contains sound information, image information and text information, three reference structures will be constructed accordingly. In addition, in order to enable each information display structure to display the power equipment of the corresponding transmission line, this solution will parallel process the information display structure according to the pre-set interval distance.

[0090] The preset interval is the interval between multiple information display structures, which can be set manually, for example, 1 cm. The information display area is an area formed by sequentially arranging information display structures in parallel based on multiple customized information.

[0091] For example: Figure 3 As shown, the information display structures are arranged in parallel with a preset interval of 1 cm, thereby obtaining an information display area corresponding to the transmission line.

[0092] S23, setting a reference structure as a fusion display structure in parallel below the information display area based on a preset interval, and binding the multiple customized information of the transmission line to the fusion display structure.

[0093] It can be understood that in order to facilitate the subsequent integration and display of the multi-customized information of the corresponding transmission lines, a reference structure is constructed below the information display area as a fusion display structure. At the same time, in order to facilitate the subsequent construction of the corresponding model based on the multi-customized information, the multi-customized information is bound to the fusion display structure, so that power monitoring personnel can view it intuitively and save time.

[0094] S24, obtaining a multivariate heterogeneous model corresponding to each of the transmission lines according to the information display area and the fusion display structure.

[0095] It is understandable that the present invention constructs a multivariate heterogeneous model, so that abnormal conditions of the transmission line can be subsequently visualized for easy intuitive viewing by personnel.

[0096] Based on the above embodiment, before the step of obtaining the power monitoring data of the transmission line at multiple monitoring moments, the method further includes A1-A2:

[0097] A1, extracting multiple monitoring moments of the transmission line, and obtaining real-time monitoring data corresponding to the monitoring device of each power equipment on the transmission line based on the monitoring moments, wherein the monitoring device of each power equipment has corresponding standard monitoring data.

[0098] It is understandable that in order to reduce the amount of data processing, the monitoring moments can be divided to obtain the power monitoring data at the monitoring moments, avoiding the extraction of the same data in a short period of time, thereby reducing the processing and storage of large amounts of data.

[0099] Among them, the monitoring time is a time value set in advance by humans, for example, it can be 1:00, 2:00, 3:00, etc. The monitoring device is a device for monitoring and measuring the data of various equipment on the transmission line, which can be an infrared camera, temperature and humidity sensor, etc. The real-time monitoring data is the monitoring data on the monitoring device, such as the captured infrared image, temperature and humidity data, etc. The standard monitoring data can be the range of normal monitoring data. For example, the temperature value of the monitored equipment is normal in the range of (10°, 25°). If it exceeds or is lower than this range, it can be determined as an abnormal situation, and then automatically extracted and displayed.

[0100] A2: Determine that the real-time monitoring data is not in the standard monitoring data range, and use the real-time monitoring data as power monitoring data.

[0101] It can be understood that when the real-time monitoring data is in the standard monitoring data, it can be judged that the equipment has an abnormality, and the abnormal information needs to be displayed so that personnel can conduct timely inspection and maintenance. Similarly, when the real-time monitoring data is in the standard monitoring data, it can be judged that the monitoring equipment has no abnormality, and the corresponding power monitoring data will not be extracted subsequently.

[0102] S3, acquiring power monitoring data of the transmission line at multiple monitoring moments, processing the power monitoring data according to the multivariate heterogeneous model, and generating an initial heterogeneous model corresponding to each of the monitoring moments.

[0103] It can be understood that the acquired power monitoring data is processed through a multivariate heterogeneous model to obtain an initial heterogeneous model, so that personnel can intuitively view the data information corresponding to abnormal conditions at different monitoring times on the transmission line, thereby saving personnel time in switching and viewing abnormal data at different times and improving monitoring efficiency.

[0104] In some embodiments, step S3 (obtaining power monitoring data of the transmission line at multiple monitoring moments, processing the power monitoring data according to the multivariate heterogeneous model, and generating an initial heterogeneous model corresponding to each of the monitoring moments) includes:

[0105] S31, acquiring power monitoring data of the transmission line at multiple monitoring moments, and determining the corresponding power equipment as an abnormal equipment based on the power monitoring data.

[0106] It is understandable that in order to subsequently display abnormal equipment in the initial heterogeneous model so that personnel can intuitively view abnormal equipment at various locations in the transmission line, the power equipment corresponding to the abnormal power monitoring data is regarded as abnormal equipment.

[0107] For example, when the acquired power monitoring data is data from the corresponding power device 2, the power device 2 is regarded as an abnormal device.

[0108] S32, determining, according to the abnormal device, a device region corresponding to the abnormal device in the multivariate heterogeneous model as a retained region, and determining the remaining device regions as deleted regions, wherein the power devices in the multivariate heterogeneous model have corresponding device regions.

[0109] It can be understood that the multi-heterogeneous model can be constructed in proportion based on the transmission line, and there are multiple power equipment on the transmission line. Furthermore, in the multi-heterogeneous model, a corresponding belonging area can be divided for each power equipment. The equipment area is the area formed by connecting the positions of each power equipment in the information display structure. For example, there is power equipment No. 1 on the transmission line. The preset distance to the left and right of the equipment determines its transmission section on the line. The text, image, and sound corresponding to the transmission section of the equipment are connected to the left and right in turn to obtain the equipment area corresponding to the power equipment.

[0110] For example, Figure 4 As shown, the multi-dimensional heterogeneous model uses the monitored multi-dimensional customized information to construct parallel information display structures corresponding to sound information, image information, and text information. The information display structure displays three power devices, and the device area corresponding to each power device can be determined by the preset regional distance of each power device on the transmission line. Alternatively, the area can be manually configured for the power device in the multi-dimensional heterogeneous model.

[0111] It is not difficult to understand that there may be power equipment without abnormalities on the transmission line. Then, the equipment area corresponding to the non-abnormal situation can be deleted later, and only the equipment area where the abnormal equipment is located can be processed and displayed, so that personnel can intuitively view the retained equipment area where the abnormal equipment is located.

[0112] For example: when the multivariate heterogeneous model contains equipment areas corresponding to three power devices, that is, power equipment 1 corresponds to equipment area No. 1, power equipment 2 corresponds to equipment area No. 2, and power equipment 3 corresponds to equipment area No. 3, then when power equipment 2 is an abnormal device, equipment area No. 2 is used as the interception area, and equipment area No. 1 and equipment area No. 3 are used as deletion areas. Similarly, when power equipment 1 and power equipment 3 are abnormal devices, equipment area No. 1 and equipment area No. 3 are used as the interception areas, and equipment area No. 2 is used as the deletion area.

[0113] S33: Process the multivariate heterogeneous model based on the deleted region to obtain an initial heterogeneous model corresponding to each monitoring moment.

[0114] It is understandable that the equipment area without abnormal data is deleted to obtain an initial heterogeneous model, so that subsequent personnel can intuitively view abnormal power equipment.

[0115] In some embodiments, step S33 (processing the multivariate heterogeneous model based on the deleted region to obtain the initial heterogeneous model corresponding to each monitoring moment) includes:

[0116] S331 , deleting and updating the multi-heterogeneous model based on the deleted region to obtain an abnormal display model, and obtaining an unconnected region in the abnormal display model as a connection region.

[0117] It is understandable that after the deletion process, there may be multiple blank areas between the multiple retained intercepted areas. In order to make the displayed data more visual, subsequent personnel can centrally view multiple abnormal device areas, so that the unconnected device areas can be integrated and connected.

[0118] S332: When it is determined that the number of the connection areas is greater than 1, an adjacent connection strategy is called to connect two adjacent connection areas to obtain an initial heterogeneous model corresponding to each monitoring moment.

[0119] It can be understood that when the connection area is 1, it can indicate that the displayed abnormal display model is an integrated data area and there is no need to connect it. When the connection area is greater than 1, it can indicate that there are blank areas in the obtained abnormal display model, and the adjacent connection areas need to be connected and integrated, so that the models of each area can be displayed together for easy viewing by personnel.

[0120] It is not difficult to understand that in order not to destroy the relative positions of the equipment areas, the adjacent connection areas are connected.

[0121] In some embodiments, step S332 (when determining that the number of the connection areas is greater than 1, invoking an adjacent connection strategy to connect two adjacent connection areas to obtain an initial heterogeneous model corresponding to each monitoring moment) includes:

[0122] S3321: When it is determined that the number of the connected areas is greater than 1, obtain the midpoints of two adjacent connected areas, and use the closest endpoints of the midpoints as positioning points.

[0123] It can be understood that in order to facilitate the connection of the two connecting areas, the closest endpoints of the midlines of the two connecting areas are used as positioning points.

[0124] Among them, Figure 5 As shown, the midpoint of the region is the central horizontal line of the connecting region, and the positioning point is the closest endpoint of the midpoint of the two connecting regions.

[0125] S3322: Obtain a perpendicular line connecting the positioning points as a reference line, and move the connecting areas on both sides of the reference line toward the reference line until the distance between the positioning points and the reference line is less than a preset distance.

[0126] It is understandable that in order to facilitate the centralized display of the connection area, the two connection areas are connected by bringing their centers closer together.

[0127] The preset distance is a distance set manually in advance, for example, it can be 5 mm.

[0128] S3323: Connect the information display structures of the same multivariate customized information located on both sides of the reference line to each other to obtain the initial heterogeneous model corresponding to each monitoring moment.

[0129] It can be understood that the information display structures of the same multi-customized information that are not connected are connected one-to-one to obtain an initial heterogeneous model, which is convenient for subsequent further fusion processing. Abnormal equipment data information can be displayed without affecting the shape of the transmission line to a large extent, so that personnel can view it visually.

[0130] S4, receiving the fusion requirements of the power monitoring terminal, performing structured fusion and data fusion processing on the initial heterogeneous models at the corresponding monitoring moments according to the fusion requirements, generating a heterogeneous fusion model and sending it to the power monitoring terminal.

[0131] It is understandable that in order to facilitate personnel to quickly view the abnormal data of each transmission line at different monitoring times, the initial heterogeneous models corresponding to multiple monitoring times can be structured and fused digitally, so that relevant personnel at the power monitoring end can quickly view the abnormal conditions of power equipment on the transmission line at different monitoring times through the heterogeneous fusion model.

[0132] In some embodiments, step S4 (receiving a fusion requirement from the power monitoring terminal, performing structured fusion and data fusion processing on the initial heterogeneous models at the corresponding monitoring time according to the fusion requirement, generating a heterogeneous fusion model and sending it to the power monitoring terminal) includes:

[0133] S41, receiving a fusion requirement from the power monitoring terminal, performing structured fusion on the initial heterogeneous models at the corresponding monitoring moments according to the fusion requirement, and generating a heterogeneous display model corresponding to the transmission line.

[0134] It is understandable that when the power monitoring end has the need to quickly view the abnormal data corresponding to the transmission line at different monitoring times, the initial heterogeneous model will be structured and fused to obtain a heterogeneous display model corresponding to the transmission line, so as to facilitate quick viewing by personnel.

[0135] The fusion requirement is the requirement of the power monitoring terminal to display the fusion of the initial heterogeneous models, which can be a fusion requirement button displayed on the power monitoring terminal.

[0136] In some embodiments, step S41 (receiving a fusion requirement from the power monitoring terminal, and performing structural fusion on the initial heterogeneous models at the corresponding monitoring time according to the fusion requirement to generate a heterogeneous display model corresponding to the transmission line) includes:

[0137] S411 , receiving a fusion requirement from the power monitoring terminal, and retrieving a display timeline according to the fusion requirement, where the display timeline has multiple monitoring moments.

[0138] It is understandable that in order to facilitate the integrated display of the initial heterogeneous model in chronological order, a display timeline with multiple monitoring moments is retrieved so that the initial heterogeneous model can be displayed on the timeline of the corresponding moment for easy viewing by personnel.

[0139] The display timeline is a timeline that displays monitoring moments and can be preset manually.

[0140] S412: Setting the initial heterogeneous model at the corresponding monitoring time on the display time axis to generate a heterogeneous display model corresponding to the transmission line.

[0141] It is understandable that the initial heterogeneous model is set at the corresponding monitoring time on the display time axis, thereby obtaining a heterogeneous display model corresponding to the transmission line, so that personnel can quickly understand the abnormal conditions of the transmission line equipment by viewing the heterogeneous display model.

[0142] S42: performing digital fusion processing on the multi-dimensional customized information corresponding to the fusion display structure in the heterogeneous display model according to the fusion requirement, and generating heterogeneous display data corresponding to the power transmission line.

[0143] It is understandable that the present invention can perform digital fusion processing on the multi-customized information in the transmission line, so that personnel can view the heterogeneous display data and intuitively and quickly view the multi-customized information at multiple times in the transmission line.

[0144] In some embodiments, step S412 (performing digital fusion processing on the multi-dimensional customized information corresponding to the fusion display structure in the heterogeneous display model according to the fusion requirement to generate heterogeneous display data corresponding to the transmission line) includes:

[0145] S4121: Acquire, according to the fusion requirement, the multi-dimensional customization information bound to the fusion presentation structure in the heterogeneous presentation model.

[0146] It is understandable that the multiple customized information bound to the fusion display structure in different heterogeneous display models has certain differences. For example, the fusion display structure can bind image information and text information, or text information and sound information.

[0147] It is not difficult to understand that by obtaining the multiple customized information bound to the fusion display structure, it is convenient to select the appropriate method for data fusion processing later.

[0148] S4122: When it is determined that the multi-dimensional customized information includes image information, the image information in the multi-dimensional customized information is used as reference information, and the remaining information in the multi-dimensional customized information is used as additional information.

[0149] It is understandable that when it is determined that the multi-dimensional customized information contains image information, the image information can be used as the baseline information, so as to facilitate the subsequent integration of the remaining multi-dimensional customized information into the image information, so that subsequent personnel can quickly view various data information.

[0150] S4123: Perform data fusion processing based on the reference information and the additional information to generate heterogeneous display data corresponding to the transmission line.

[0151] It can be understood that by integrating additional information into the baseline information, personnel can quickly view image information and other text and sound information at different times through heterogeneous display data, saving personnel time in triggering and viewing different multi-customized information on the power monitoring end. The present invention can generate corresponding display videos by fusing the multi-customized information bound to the fusion display structure, and obtain corresponding videos by fusing images, text and / or sounds, which is convenient for intuitive display to users.

[0152] In some embodiments, step S4123 (performing a data fusion process based on the reference information and the additional information to generate heterogeneous display data corresponding to the transmission line) includes:

[0153] S41231: construct an image frame based on the reference information, and when it is determined that the additional information is sound information and / or text information, generate an audio axis based on the sound information. And / or

[0154] It can be understood that an image frame for filling image information is constructed through the reference information. At the same time, when the additional information is sound information, a corresponding audio axis is generated according to the sound information to facilitate the playback of the corresponding sound information.

[0155] Among them, the image frame is an image that displays multiple customized information, and the audio axis is the audio structure corresponding to the sound information.

[0156] It is worth mentioning that when the image frames of multiple monitoring moments are combined together, a video corresponding to the transmission line can be formed, thereby displaying the power monitoring end for easy viewing by personnel.

[0157] S41232: Construct a text filling slot in the image frame based on the text information, fill the text information into the text filling slot, and generate heterogeneous display data.

[0158] It can be understood that the text filling slot is a slot frame filled with text information.

[0159] Through the above-mentioned implementation manner, the present invention obtains heterogeneous display data, which facilitates personnel to quickly obtain a variety of information data by viewing the heterogeneous display data.

[0160] S4124: When it is determined that the multi-dimensional customized information does not have image information, perform data fusion processing based on a preset image and the multi-dimensional customized information to generate heterogeneous display data corresponding to the power transmission line.

[0161] It is understandable that the preset image is a pre-set image, which can be a blank image, so as to facilitate the integration and display of corresponding multiple customized information in the image for quick viewing by personnel.

[0162] In some embodiments, step S4124 (when determining that the multi-dimensional customized information does not include image information, performing data fusion processing based on a preset image and the multi-dimensional customized information to generate heterogeneous display data corresponding to the power transmission line) includes:

[0163] S41241: When it is determined that the multi-dimensional customized information does not have image information, an image frame is constructed according to a preset image; when it is determined that the multi-dimensional customized information is sound information and / or text information, an audio axis is generated based on the sound information. And / or

[0164] It is understandable that when the multi-dimensional customized information does not contain image information, a preset image can be used to construct an image frame for easy viewing by personnel.

[0165] The preset image may be an image preset manually.

[0166] S41242: Construct a text filling slot in the image frame based on the text information, fill the text information into the text filling slot, and generate heterogeneous display data.

[0167] Through the above-mentioned implementation manner, the present invention obtains heterogeneous display data, which facilitates personnel to quickly obtain a variety of information data by viewing the heterogeneous display data.

[0168] S43: Generate a heterogeneous fusion model based on the heterogeneous display model and the heterogeneous display data, and send the model to the power monitoring terminal.

[0169] Through the above implementation, the present invention obtains a heterogeneous fusion model and sends it to the power monitoring terminal, realizing the fusion display of multiple heterogeneous data, saving personnel's viewing time, and facilitating timely handling of power system safety issues.

[0170] like Figure 6 FIG. 1 is a schematic diagram of the structure of a distribution station optimization control device provided by an embodiment of the present invention, wherein the distribution station optimization control device includes:

[0171] an acquisition module, configured to acquire a plurality of transmission lines in a power network diagram of a distribution station, and receive multi-dimensional customized information on each of the transmission lines from a power monitoring terminal, wherein the multi-dimensional customized information includes at least one of sound information, image information, and text information;

[0172] A construction module, configured to determine a reference structure according to the morphological information of the transmission line, and to construct a multivariate heterogeneous model corresponding to each of the transmission lines based on the multivariate customized information and the reference structure;

[0173] a processing module, configured to obtain power monitoring data of the transmission line at a plurality of monitoring moments, process the power monitoring data according to the multivariate heterogeneous model, and generate an initial heterogeneous model corresponding to each of the monitoring moments;

[0174] A generation module is used to receive the fusion requirements of the power monitoring terminal, perform structured fusion and data fusion processing on the initial heterogeneous models at the corresponding monitoring time according to the fusion requirements, generate a heterogeneous fusion model and send it to the power monitoring terminal.

[0175] like Figure 7 FIG. 1 is a schematic diagram of the hardware structure of an electronic device provided by an embodiment of the present invention. The electronic device 70 includes: a processor 71, a memory 72 and a computer program;

[0176] The memory 72 is used to store the computer program, which may also be a flash memory. The computer program is, for example, an application program or a functional module for implementing the above method.

[0177] The processor 71 is configured to execute the computer program stored in the memory to implement the various steps performed by the device in the above method. For details, please refer to the relevant description in the above method embodiment.

[0178] Optionally, the memory 72 can be independent or integrated with the processor 71.

[0179] When the memory 72 is a device independent of the processor 71, the device may further include:

[0180] The bus 73 is used to connect the memory 72 and the processor 71 .

[0181] The present invention also provides a readable storage medium, in which a computer program is stored. When the computer program is executed by a processor, it is used to implement the methods provided in the various embodiments described above.

[0182] The readable storage medium may be a computer storage medium or a communication medium. Communication media include any medium that facilitates the transfer of computer programs from one location to another. Computer storage media may be any available medium that can be accessed by a general-purpose or special-purpose computer. For example, a readable storage medium is coupled to a processor, enabling the processor to read information from and write information to the readable storage medium. Of course, the readable storage medium may also be an integral part of the processor. The processor and the readable storage medium may be located in an application-specific integrated circuit (ASIC). In addition, the ASIC may be located in a user device. Of course, the processor and the readable storage medium may also exist as discrete components in a communication device. The readable storage medium may be a read-only memory (ROM), a random access memory (RAM), a CD-ROM, a magnetic tape, a floppy disk, an optical data storage device, and the like.

[0183] The present invention also provides a program product, which includes execution instructions stored in a readable storage medium. At least one processor of a device can read the execution instructions from the readable storage medium, and at least one processor executes the execution instructions so that the device implements the methods provided in the various embodiments described above.

[0184] In the embodiments of the above-mentioned devices, it should be understood that the processor may be a central processing unit (CPU), other general-purpose processors, digital signal processors (DSP), application-specific integrated circuits (ASICs), etc. The general-purpose processor may be a microprocessor or any conventional processor. The steps of the method disclosed in the present invention may be directly executed by a hardware processor or by a combination of hardware and software modules within the processor.

[0185] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the above embodiments, or replace some or all of the technical features therein with equivalents. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.

Claims

1. A distribution station optimization control method, characterized in that: include: Acquire multiple transmission lines in a power network diagram of a distribution station, and receive multi-dimensional customized information about each of the transmission lines from a power monitoring terminal, wherein the multi-dimensional customized information includes at least one of sound information, image information, and text information; Determining a reference structure according to the morphological information of the transmission line, and constructing a multivariate heterogeneous model corresponding to each of the transmission lines based on the multivariate customized information and the reference structure; Acquiring power monitoring data of the transmission line at multiple monitoring moments, processing the power monitoring data according to the multivariate heterogeneous model, and generating an initial heterogeneous model corresponding to each of the monitoring moments, including: Acquiring power monitoring data of the transmission line at multiple monitoring moments, and determining corresponding power equipment as abnormal equipment based on the power monitoring data; According to the abnormal device, a corresponding device area is determined in the multivariate heterogeneous model as a retained area, and the remaining device areas are determined as deleted areas, wherein the power equipment in the multivariate heterogeneous model has a corresponding device area; The multivariate heterogeneous model is processed based on the deleted region to obtain an initial heterogeneous model corresponding to each monitoring moment, including: Deleting and updating the multivariate heterogeneous model based on the deleted region to obtain an abnormal display model, and obtaining an unconnected region in the abnormal display model as a connection region; When it is determined that the number of the connection areas is greater than 1, the adjacent connection strategy is called to connect two adjacent connection areas to obtain the initial heterogeneous model corresponding to each monitoring moment, including: When it is determined that the number of the connected areas is greater than 1, obtaining the midpoints of two adjacent connected areas, and using the closest endpoints of the midpoints as positioning points; Obtaining a perpendicular line connecting the positioning points as a reference line, and moving the connecting areas on both sides of the reference line toward the reference line until the distance between the positioning points and the reference line is less than a preset distance; Connecting the information display structures of the same multivariate customized information on both sides of the reference line to obtain an initial heterogeneous model corresponding to each monitoring moment; Receive the fusion requirements of the power monitoring terminal, perform structured fusion and data fusion processing on the initial heterogeneous models at the corresponding monitoring moments according to the fusion requirements, generate a heterogeneous fusion model and send it to the power monitoring terminal.

2. The method according to claim 1, characterized in that The step of determining a reference structure according to the morphological information of the transmission lines and constructing a multivariate heterogeneous model corresponding to each of the transmission lines based on the multivariate customized information and the reference structure includes: Acquire the morphological information of the transmission line and the multi-dimensional customized information, and construct a reference structure consistent with the morphological structure of the transmission line based on the morphological information, wherein the reference structure has a plurality of power devices; Constructing reference structures corresponding to the respective multi-component customized information in the power transmission line as information display structures for the respective multi-component customized information, and sequentially arranging the information display structures in parallel based on preset intervals to obtain an information display area for the power transmission line; A reference structure is arranged in parallel below the information display area based on a preset interval as a fusion display structure, and the multiple customized information of the transmission line is bound to the fusion display structure; According to the information display area and the fusion display structure, a multivariate heterogeneous model corresponding to each of the transmission lines is obtained.

3. The method according to claim 2, characterized in that Before the step of obtaining the power monitoring data of the transmission line at multiple monitoring moments, the method further includes: Extracting multiple monitoring moments of the transmission line, and acquiring real-time monitoring data corresponding to the monitoring device of each of the power equipment on the transmission line based on the monitoring moments, wherein the monitoring device of each of the power equipment has corresponding standard monitoring data; When it is determined that the real-time monitoring data is not equal to the corresponding standard monitoring data, the corresponding real-time monitoring data is used as power monitoring data.

4. The method according to claim 1, wherein The receiving of the fusion requirement of the power monitoring terminal, performing structured fusion and data fusion processing on the initial heterogeneous models at the corresponding monitoring moment according to the fusion requirement, generating a heterogeneous fusion model and sending it to the power monitoring terminal, includes: receiving a fusion requirement from the power monitoring terminal, and performing structural fusion on the initial heterogeneous models at the corresponding monitoring moment according to the fusion requirement to generate a heterogeneous display model corresponding to the transmission line; According to the fusion requirement, data fusion processing is performed on the multi-dimensional customized information corresponding to the fusion display structure in the heterogeneous display model to generate heterogeneous display data corresponding to the transmission line; A heterogeneous fusion model is generated according to the heterogeneous display model and the heterogeneous display data and sent to the power monitoring terminal.

5. The method according to claim 4, characterized in that The receiving of the fusion requirement of the power monitoring terminal, performing structural fusion on the initial heterogeneous models at the corresponding monitoring moment according to the fusion requirement, and generating a heterogeneous display model corresponding to the transmission line includes: receiving a fusion requirement from the power monitoring terminal, and retrieving a display timeline according to the fusion requirement, where the display timeline includes multiple monitoring moments; The initial heterogeneous model is set at a corresponding monitoring moment on the display time axis to generate a heterogeneous display model corresponding to the transmission line.

6. The method according to claim 4, characterized in that The step of performing digital fusion processing on the multi-dimensional customized information corresponding to the fusion display structure in the heterogeneous display model according to the fusion requirement to generate heterogeneous display data corresponding to the transmission line includes: Acquire the multi-dimensional customized information bound to the fusion display structure in the heterogeneous display model according to the fusion requirement; When it is determined that the multi-dimensional customized information includes image information, the image information in the multi-dimensional customized information is used as reference information, and the remaining information in the multi-dimensional customized information is used as additional information; Performing data fusion processing on the reference information and the additional information to generate heterogeneous display data corresponding to the transmission line; When it is determined that the multi-dimensional customized information does not have image information, a data fusion process is performed based on a preset image and the multi-dimensional customized information to generate heterogeneous display data corresponding to the power transmission line.

7. The method according to claim 6, characterized in that The performing data fusion processing based on the reference information and the additional information to generate heterogeneous display data corresponding to the transmission line includes: Constructing an image frame according to the reference information, and generating an audio axis based on the sound information when determining that the additional information is sound information and / or text information; and / or constructing a text filling slot in the image frame based on the text information, filling the text information into the text filling slot, and generating heterogeneous display data; When it is determined that the multi-dimensional customized information does not have image information, performing data fusion processing based on a preset image and the multi-dimensional customized information to generate heterogeneous display data corresponding to the power transmission line includes: When it is determined that the multi-dimensional customized information does not have image information, constructing an image frame according to a preset image; when it is determined that the multi-dimensional customized information is sound information and / or text information, generating an audio axis based on the sound information; and / or A text filling slot is constructed in the image frame based on the text information, and the text information is filled into the text filling slot to generate heterogeneous display data.

8. A distribution station optimization control device, characterized in that: include: an acquisition module, configured to acquire a plurality of transmission lines in a power network diagram of a distribution station, and receive multi-dimensional customized information on each of the transmission lines from a power monitoring terminal, wherein the multi-dimensional customized information includes at least one of sound information, image information, and text information; A construction module, configured to determine a reference structure according to the morphological information of the transmission line, and to construct a multivariate heterogeneous model corresponding to each of the transmission lines based on the multivariate customized information and the reference structure; A processing module, configured to obtain power monitoring data of the transmission line at multiple monitoring moments, process the power monitoring data according to the multivariate heterogeneous model, and generate an initial heterogeneous model corresponding to each of the monitoring moments, including: Acquiring power monitoring data of the transmission line at multiple monitoring moments, and determining corresponding power equipment as abnormal equipment based on the power monitoring data; According to the abnormal device, a corresponding device area is determined in the multivariate heterogeneous model as a retained area, and the remaining device areas are determined as deleted areas, wherein the power equipment in the multivariate heterogeneous model has a corresponding device area; The multivariate heterogeneous model is processed based on the deleted region to obtain an initial heterogeneous model corresponding to each monitoring moment, including: Deleting and updating the multivariate heterogeneous model based on the deleted region to obtain an abnormal display model, and obtaining an unconnected region in the abnormal display model as a connection region; When it is determined that the number of the connection areas is greater than 1, the adjacent connection strategy is called to connect two adjacent connection areas to obtain the initial heterogeneous model corresponding to each monitoring moment, including: When it is determined that the number of the connected areas is greater than 1, obtaining the midpoints of two adjacent connected areas, and using the closest endpoints of the midpoints as positioning points; Obtaining a perpendicular line connecting the positioning points as a reference line, and moving the connecting areas on both sides of the reference line toward the reference line until the distance between the positioning points and the reference line is less than a preset distance; Connecting the information display structures of the same multivariate customized information on both sides of the reference line to obtain an initial heterogeneous model corresponding to each monitoring moment; A generation module is used to receive the fusion requirements of the power monitoring terminal, perform structured fusion and data fusion processing on the initial heterogeneous models at the corresponding monitoring moments according to the fusion requirements, generate a heterogeneous fusion model and send it to the power monitoring terminal.