Information Management System and Method for Offshore Photovoltaic, and Electronic Device
By designing the offshore photovoltaic information management system, using mobile terminals to obtain environmental parameters and equipment operation data, generating and performing target tasks, the problem that offshore photovoltaic projects cannot be managed in real time is solved, and efficient and convenient construction management is achieved.
Patent Information
- Application Number
- CN202510039294.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-10
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2045-01-10
AI Technical Summary
The existing technology cannot realize real-time management of offshore photovoltaic projects, resulting in insufficient construction efficiency and management convenience.
An offshore photovoltaic information management system is designed to obtain environmental parameters collected by sensors and operation data of photovoltaic equipment through mobile terminals, generate target tasks and execute strategies, and realize real-time management and feedback.
It realizes unified management and real-time monitoring of offshore photovoltaic projects, improves construction management efficiency and production operation efficiency, and avoids the limitations of manual management.
Smart Images

Figure CN119477222B_ABST
Abstract
Description
Background Art
[0002] Due to advantages such as being convenient to carry and easy to operate, mobile terminals can ensure the timeliness of information feedback, the comprehensiveness of content, and enable instant communication in many scenarios. Their good application can play an excellent role in modern construction and management.
[0003] There are many construction processes and complex operations in offshore photovoltaic projects, and each process is crucial. Therefore, it is of great significance to achieve unified management of offshore photovoltaic projects.
[0004] In the process of realizing offshore photovoltaics, currently, data management is carried out manually or through a server, with poor convenience and unable to achieve real-time management. Summary of the Invention
[0005] The purpose of the present disclosure is to provide an information management system for offshore photovoltaics, an information management method for offshore photovoltaics, and an electronic device, so as to at least to some extent overcome the problem of being unable to manage offshore photovoltaic projects in real time due to the limitations and defects of related technologies.
[0006] According to one aspect of the present disclosure, there is provided an information management system for offshore photovoltaics, which is applied to a mobile terminal. The information management system for offshore photovoltaics includes: a data acquisition module, configured to acquire external environment parameters collected by a plurality of sensors, and acquire operation data of photovoltaic devices in the installed photovoltaic area; a field feedback module, configured to acquire feedback information regarding the offshore photovoltaic construction site and specify the transmission direction of the feedback information; the feedback information includes abnormal feedback information determined according to the external environment parameters and operation data and other feedback information of the offshore photovoltaic construction site; a task processing module, configured to, after sending the feedback information to a target terminal according to the transmission direction, generate a target task according to the feedback information, determine a task execution strategy corresponding to the target task in combination with the external environment parameters, and send the target task to the target terminal, so that the target terminal uploads a task processing result obtained by executing the target task based on the task execution strategy; an information display module, configured to display task execution information of the target task, and in response to a trigger operation of a target person, display display information within the user authority corresponding to the target person on the operation interface.
[0007] In an exemplary embodiment of the present disclosure, the task processing module includes: a target task determination module, configured to determine a target task according to the type of the feedback information; a task execution module, configured to, when it is determined according to the external environment parameters that the task execution strategy of the target task is allowed to be executed, determine a task execution amplitude according to the feedback content in the feedback information, and execute the target task according to the task execution amplitude to determine a task execution result; a task stop execution module, configured to stop executing the target task when it is determined according to the external environment parameters that the task execution strategy of the target task is prohibited from being executed.
[0008] In an exemplary embodiment of the present disclosure, the target task determination module includes: a first task determination module, configured to determine the target task as an exception handling task if the type of the feedback information is device exception feedback information in the exception feedback information; a second task determination module, configured to determine the target task as a suggestion evaluation task if the type of the feedback information is suggestion feedback information; a third task determination module, configured to determine the target task as a construction progress adjustment task if the type of the feedback information is construction progress feedback information; a fourth task determination module, configured to determine the target task as a construction quality adjustment task if the type of the feedback information is construction quality feedback information; a fifth task determination module, configured to determine the target task as a photovoltaic device adjustment task if the type of the feedback information is performance feedback information of the photovoltaic device.
[0009] In an exemplary embodiment of the present disclosure, the information display module includes: a user permission determination module, configured to obtain the user permissions of the target personnel associated with the offshore photovoltaic construction site; a display information determination module, configured to, in response to a user trigger operation, retrieve the display information within the user permissions of the target personnel; the display information includes one or more of the monitoring images, warning information, personnel allocation information, construction process information, task execution results, and feedback information of the offshore photovoltaic construction site; a first display module, configured to display the monitoring images of the photovoltaic devices in each photovoltaic area in a first display area on the operation interface; a second display module, configured to display the detailed information of the photovoltaic devices corresponding to the exception feedback information in each photovoltaic area in a second display area; a third display module, configured to independently display one or more of the warning information, personnel allocation information, construction process information, and feedback information in a floating window form in a blank area outside the first display area and the second display area.
[0010] In an exemplary embodiment of the present disclosure, the information management system of the offshore photovoltaic further includes:
[0011] An instant messaging module, configured to, in response to a click operation on an instant messaging control on the operation interface, perform instant messaging with the personnel related to the offshore photovoltaic construction site.
[0012] In an exemplary embodiment of the present disclosure, the information management system of the offshore photovoltaic further includes:
[0013] The construction progress prediction module is used to input the construction progress of the current cycle and the external environment parameters of the next cycle into the first convolutional neural network model, and output the initial predicted construction progress of the next cycle; the first convolutional neural network model is trained according to the historical construction progress and the external environment parameters of the historical cycle; the construction progress correction module is used to determine the weight parameters of the next cycle according to the task executor configuration, resource allocation situation, construction progress requirements of the next cycle and the construction progress feedback information, and correct the initial predicted construction progress based on the weight parameters to determine the predicted construction progress of the next cycle.
[0014] In an exemplary embodiment of the present disclosure, the information management system of the offshore photovoltaic also includes: a performance parameter determination module, which is used to determine the performance parameters of the photovoltaic devices in the photovoltaic area that has been installed; a performance parameter adjustment module, which is used to adjust the installation parameters of the photovoltaic devices according to the performance feedback information of the photovoltaic devices to correct the performance parameters; an installation parameter prediction module, which is used to input the corrected performance parameters and the external environment parameters into the second convolutional neural network model to determine the predicted installation parameters of the photovoltaic devices that have not been installed; the second convolutional neural network model is trained according to the data composed of the performance parameters of the photovoltaic devices that have been installed and the external environment parameters; an installation parameter adjustment module, which is used to adjust the predicted installation parameters of the photovoltaic devices when the performance parameters of the photovoltaic devices set based on the predicted installation parameters do not meet the performance conditions, in response to the triggering operation of the photovoltaic device function button on the operation interface.
[0015] In an exemplary embodiment of the present disclosure, the information management system of the offshore photovoltaic also includes:
[0016] An alarm module, which is used to determine the abnormal level of the abnormal feedback information in the feedback information, generate the corresponding alarm information based on the abnormal level, and transmit the alarm information to the audio device and the mobile terminal of the responsible person corresponding to the abnormal level; a maintenance suggestion module, which is used to generate maintenance suggestions for the photovoltaic devices according to the abnormal feedback information; a maintenance plan generation module, which is used to generate a maintenance plan for each photovoltaic device according to the operation data of the photovoltaic devices and the historical maintenance plan of the photovoltaic devices.
[0017] According to one aspect of the present disclosure, there is provided a method for information management of offshore photovoltaic, which is applied to a mobile terminal. The method for information management of offshore photovoltaic includes: obtaining external environment parameters collected by a plurality of sensors, and obtaining operation data of photovoltaic devices in a photovoltaic area where installation has been completed; obtaining feedback information for an offshore photovoltaic construction site, and specifying a transmission direction of the feedback information; the feedback information includes abnormal feedback information determined according to the external environment parameters and operation data and other feedback information of the offshore photovoltaic construction site; after the feedback information is sent to a target terminal according to the transmission direction, generating a target task according to the feedback information, determining a task execution strategy corresponding to the target task in combination with the external environment parameters, and sending the target task to the target terminal, so that the target terminal uploads a task execution result obtained by executing the target task based on the task execution strategy; displaying task execution information of the target task, and in response to a trigger operation of a target person, displaying display information within the user permissions corresponding to the target person on an operation interface.
[0018] According to one aspect of the present disclosure, there is provided an electronic device, including: a processor; a memory for storing executable instructions of the processor; wherein, the processor is configured to implement the method for information management of offshore photovoltaic by executing the executable instructions.
[0019] In the technical solutions provided in the embodiments of the present disclosure, on the one hand, the information management system of offshore photovoltaic applied to a mobile terminal can realize real-time management and unified management of an offshore photovoltaic project, improve operation management efficiency, and realize standardized management of an offshore photovoltaic construction site by obtaining feedback information for an offshore photovoltaic construction site, generating a target task according to the feedback information, and executing the corresponding target task based on a task execution strategy, and then displaying task execution information and displaying display information within the user permissions of a target person on an operation interface. On the other hand, it avoids the limitations of manual management, increases the information dimension of management, improves management efficiency and convenience, improves the efficiency and comprehensiveness of offshore photovoltaic project management, and improves the production operation efficiency of offshore photovoltaic.
[0020] It should be understood that the above general description and the following detailed description are only exemplary and explanatory, and cannot limit the present disclosure. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The drawings herein are incorporated into the specification and constitute a part of the specification, showing embodiments consistent with the present disclosure, and are used together with the specification to explain the principles of the present disclosure. Obviously, the drawings in the following description are only some embodiments of the present disclosure, and those of ordinary skill in the art can obtain other drawings without creative efforts based on these drawings.
[0022] Figure 1Schematically show a block diagram of an information management system for offshore photovoltaic in an embodiment of the present disclosure.
[0023] Figure 2 Schematically show a schematic diagram of an interface for displaying information in an embodiment of the present disclosure.
[0024] Figure 3 Schematically show a schematic diagram of a monitoring screen for each photovoltaic area in an embodiment of the present disclosure.
[0025] Figure 4 Schematically show a schematic diagram of adjusting installation parameters of photovoltaic devices in an embodiment of the present disclosure.
[0026] Figure 5 Schematically show a flowchart of an information management method for offshore photovoltaic in an embodiment of the present disclosure.
[0027] Figure 6 Schematically show a block diagram of an electronic device in an embodiment of the present disclosure. Detailed implementation manners
[0028] Now, example embodiments will be described more fully with reference to the accompanying drawings. However, the example embodiments can be implemented in various forms and should not be construed as limited to the examples set forth herein; rather, these embodiments are provided so that this disclosure will be more complete and comprehensive, and will fully convey the concept of the example embodiments to those skilled in the art. The features, structures, or characteristics described may be combined in any suitable manner in one or more embodiments. In the following description, numerous specific details are provided to give a thorough understanding of the embodiments of the present disclosure. However, those skilled in the art will realize that the technical solutions of the present disclosure can be practiced without one or more of the specific details, or other methods, components, devices, steps, etc. may be adopted. In other cases, well-known technical solutions are not shown or described in detail to avoid obscuring the various aspects of the present disclosure.
[0029] In addition, the accompanying drawings are only schematic illustrations of the present disclosure and are not necessarily drawn to scale. The same reference numerals in the drawings denote the same or similar parts, and thus their repeated description will be omitted. Some of the block diagrams shown in the drawings are functional entities and do not necessarily correspond to physically or logically independent entities. These functional entities can be implemented in software form, or in one or more hardware modules or integrated circuits, or in different networks and / or processor devices and / or microcontroller devices.
[0030] An information management system for offshore photovoltaic is provided in an embodiment of the present disclosure. Figure 1FIG. 0 schematically shows a schematic diagram of an information management system for offshore photovoltaic power generation. The information management system for offshore photovoltaic power generation applied to a mobile terminal can be applied to an application scenario of unified management of an offshore photovoltaic construction site. Refer to Figure 1 As shown in FIG. 0, the system mainly includes the following modules:
[0031] A data acquisition module 110, configured to acquire external environment parameters collected by a plurality of sensors, and acquire operation data of photovoltaic devices in a photovoltaic area where installation has been completed;
[0032] A site feedback module 120, configured to acquire feedback information regarding an offshore photovoltaic construction site, and specify a transmission direction of the feedback information; the feedback information includes abnormal feedback information determined according to the external environment parameters and the operation data, and other feedback information of the offshore photovoltaic construction site;
[0033] A task processing module 130, configured to, after sending the feedback information to a target terminal according to the transmission direction, generate a target task according to the feedback information, determine a task execution strategy corresponding to the target task in combination with the external environment parameters, and send the target task to the target terminal, so that the target terminal uploads a task execution result obtained by executing the target task based on the task execution strategy;
[0034] An information display module 140, configured to display task execution information of the target task, and in response to a trigger operation of a target person, display display information within the user authority corresponding to the target person on an operation interface.
[0035] In the technical solution provided in the embodiments of the present disclosure, on the one hand, the information management system for offshore photovoltaic power generation can realize unified management of the construction site of offshore photovoltaic power generation in an offshore photovoltaic project, improve operation management efficiency, and achieve standardized management of the offshore photovoltaic construction site by acquiring feedback information regarding the offshore photovoltaic construction site, generating a target task according to the feedback information, executing the corresponding target task based on the task execution strategy, and then displaying the task execution information and displaying the display information within the authority of the target person on the operation interface. On the other hand, the limitations of manual management are avoided, the information dimension of management is increased, the management efficiency and convenience are improved, the efficiency and comprehensiveness of the management of the offshore photovoltaic project are improved, and the production operation efficiency of the offshore photovoltaic power generation is improved.
[0036] Next, a specific description will be given of the information management system for offshore photovoltaic power generation in the embodiments of the present disclosure.
[0037] The data acquisition module 110 is configured to acquire external environment parameters collected by a plurality of sensors, and acquire operation data of photovoltaic devices in a photovoltaic area where installation has been completed.
[0038] In the embodiments of the present disclosure, the information management system of the offshore photovoltaic can be configured on a mobile terminal, specifically implemented through a mini-program of the mobile terminal, or through a public account, and can also be implemented through an application program, which is not specifically limited herein. The mobile terminal can be any type of terminal, such as a smart phone, a tablet computer, or other convenient mobile intelligent terminals.
[0039] The sensors can include a wind sensor, a temperature sensor, a schedule wave gauge, etc. The external environmental parameters can include one or more of the offshore wind force, wind direction, temperature, and wave height. The offshore photovoltaic site can be divided into multiple photovoltaic areas for installing photovoltaic devices, and each photovoltaic area can be configured with multiple offshore cameras, and the multiple offshore cameras can be configured at different positions of each photovoltaic area to achieve full-range monitoring.
[0040] The offshore photovoltaic construction site can include multiple photovoltaic areas, where some photovoltaic areas can be photovoltaic areas that have been completed with installation, and another part of the photovoltaic areas can be photovoltaic areas that have not been completed with installation; or all photovoltaic areas are photovoltaic areas that have not been completed with installation. If there are photovoltaic areas that have been completed with installation, while obtaining the external environmental parameters, the operation data of the photovoltaic devices in the photovoltaic areas that have been completed with installation can also be obtained. The operation data can include the configuration data during the operation of the photovoltaic devices, and can include one or more of the voltage, current, and power when the photovoltaic inverter is running after being turned on.
[0041] The on-site feedback module 120 is used to obtain the feedback information for the offshore photovoltaic construction site and specify the transmission direction of the feedback information; the feedback information includes the abnormal feedback information determined according to the external environmental parameters and the operation data, and other feedback information of the offshore photovoltaic construction site.
[0042] In the embodiments of the present disclosure, the feedback information refers to the feedback information for the offshore photovoltaic site, which can include abnormal feedback information and other feedback information. The abnormal feedback information refers to the feedback information with abnormal conditions, and the abnormal feedback information can be specifically determined according to the external environmental parameters collected by multiple sensors and the operation data of the photovoltaic devices in the photovoltaic areas that have been completed with installation. For example, it can be weather abnormal feedback information and equipment abnormal feedback information. When the external environmental parameters do not meet the corresponding thresholds, weather abnormal feedback information can be obtained; when the operation data of the photovoltaic devices do not meet the operation conditions, equipment abnormal feedback information can be obtained.
[0043] Other feedback information refers to other types of feedback information other than abnormal feedback information. Other feedback information may include one or more of suggestion feedback information, construction progress feedback information, construction quality feedback information, and performance feedback information of photovoltaic devices in the installed photovoltaic area. Among them, if there are no photovoltaic devices in the installed photovoltaic area, the performance feedback information of the photovoltaic devices in the installed photovoltaic area is not included in the other feedback information. Suggestion feedback information refers to any type of construction suggestion for the offshore photovoltaic construction site. The construction progress feedback information can be evaluation information on the construction progress. The construction quality feedback information is used to describe the evaluation of the construction quality of the photovoltaic devices in the installed photovoltaic area. The performance feedback information refers to the evaluation of the performance parameters of the photovoltaic devices in the installed photovoltaic area.
[0044] Among them, the photovoltaic devices may include photovoltaic modules (solar panels), inverters, combiner boxes, control cabinets, cables, photovoltaic energy storage batteries and devices, brackets, and detection devices. The photovoltaic modules are used to convert solar energy into electrical energy. The inverter is a device that converts the direct current generated by photovoltaic power generation into alternating current. The combiner box refers to a device that, after performing current collection, constructs a complete photovoltaic power generation system through the coordinated use of a controller, a DC power distribution cabinet, a photovoltaic inverter, and an AC power distribution cabinet, and realizes grid connection with the commercial power. The control cabinet is used to control the current transmission during the entire power generation process and protect the equipment, etc. The cable is responsible for the current transmission work during the entire power generation process. The photovoltaic energy storage batteries and devices are mainly used to reduce the impact of the solar photovoltaic power generation system on the power system and improve the stability and reliability of the system. The bracket refers to the equipment for installing the solar panels. The design of the bracket should consider the angle and direction of the sun so that the photovoltaic panels can receive solar energy to the greatest extent. The detection device is a device used to detect the performance and faults of the photovoltaic system.
[0045] After obtaining the feedback information for the offshore photovoltaic construction site, the transmission direction of the feedback information can be specified. The transmission direction can be used to represent the recipient of the feedback information, that is, the terminal corresponding to the person receiving the feedback information.
[0046] The task processing module 130 is used to, after sending the feedback information to the target terminal according to the transmission direction, generate a target task based on the feedback information, determine the task execution strategy corresponding to the target task in combination with the external environment parameters, and send the target task to the target terminal so that the target terminal uploads the task execution result obtained by executing the target task based on the task execution strategy.
[0047] In the embodiments of the present disclosure, after determining the transmission direction of the feedback information, the feedback information may be sent to the target terminal according to the transmission direction. The target terminal refers to the terminal of the person who receives the feedback information. The person who receives the feedback information may be the person responsible for the content involved in the feedback information. For example, if the content involved in the feedback information is equipment anomaly feedback information, the target terminal may be the terminal of the equipment responsible person and the terminal of the equipment management personnel; if the content involved in the feedback information is construction progress feedback information, the target terminal may be the terminal of the progress management personnel.
[0048] After sending the feedback information to the target terminal, a target task may be generated according to the feedback information, and a task execution strategy for the target task may be determined in combination with external environment parameters. Exemplarily, the target task may be an anomaly handling task, a suggestion evaluation task, a construction progress adjustment task, a construction quality adjustment task, and a photovoltaic equipment adjustment task.
[0049] In some embodiments, if the type of the feedback information is equipment anomaly feedback information in the anomaly feedback information, the target task is determined as an anomaly handling task. If the type of the feedback information is suggestion feedback information, the target task is determined as a suggestion evaluation task. The suggestion evaluation task is used to evaluate the adoptable probability of the suggestion. If the type of the feedback information is construction progress feedback information, the target task is determined as a construction progress adjustment task. If the type of the feedback information is construction quality feedback information, the target task is determined as a construction quality adjustment task. If the type of the feedback information is the performance feedback information of the photovoltaic equipment, the target task is determined as a photovoltaic equipment adjustment task, that is, a task for adjusting the photovoltaic equipment.
[0050] When the target task is a photovoltaic equipment adjustment task, if there are multiple photovoltaic equipments to be adjusted, one or more operators may perform the modification in parallel, so as to improve the efficiency and further realize information sharing.
[0051] The task execution policy can be either allowing execution or prohibiting execution. Exemplarily, external environment parameters can be obtained. When the external environment parameters are at the first level, the task execution policy can be allowing execution; when the external environment parameters are at the second level, the task execution policy can be prohibiting execution. The security level of the first level is higher than that of the second level. When the task execution policy is allowing execution, the task execution amplitude can be determined according to the feedback content included in the feedback information. Exemplarily, when the feedback content includes a recommended value, the task execution amplitude can be determined as adjusted to the recommended value. When the recommended value is not included, the adjustment direction and adjustment amplitude can be determined according to the text information in the feedback content. For example, when the feedback content includes text information such as "smaller", the adjustment direction can be increasing. The adjustment amplitude can be determined according to the average value obtained by averaging the standard value or the minimum and maximum values of the historical values. Alternatively, the feedback content can also be converted to obtain its corresponding feedback level, and the adjustment amplitude corresponding to the feedback information can be determined according to the feedback level.
[0052] After determining the task execution amplitude, the target task and the task execution amplitude of the target task can be sent to the corresponding target terminal, so that the personnel corresponding to the target terminal can execute the target task according to the task execution amplitude to obtain the task execution result. And the task execution result of the target task can be uploaded to the information management system of the offshore PV through the target terminal to display the task execution result on the operation interface. When executing the target task, the operation can be directly performed on the target terminal, or it can be performed at the offshore PV construction site and then photographed and uploaded to the system.
[0053] The information display module 140 is used to display the task execution information of the target task and, in response to the triggering operation of the target personnel, display the display information within the authority of the target personnel on the operation interface.
[0054] In the embodiments of the present disclosure, the information management system for offshore photovoltaic can also receive and display the task execution information corresponding to the target task. The task execution information may include one or more of the task execution items, task execution results, task detail information (such as whether materials are used, whether it is solved, repair content, whether it meets the standards, existing problems, causes, etc.), file information corresponding to the target task, and executor information. The file information corresponding to the task type may be image information. Specifically, in order to improve accuracy, image recognition can be performed on the uploaded file information, and the audit can be carried out based on the image recognition result to obtain the audit result; if the audit result is that the audit fails, a prompt message indicating the failure of the audit is sent so that the task executor can re-upload the file information according to the prompt message. It should be noted that a QR code image can also be provided so that in response to the scanning operation of the QR code image, the task execution information of each target task is displayed, rather than directly displayed in the form of a list, improving convenience.
[0055] In addition, the display information within the user permissions corresponding to the target person can also be displayed. The target person can be any person related to the offshore photovoltaic construction site. When receiving the trigger operation of the target person, first, the identity authentication of the target person can be performed, and at the same time, the label of each target person is displayed. The label is used to describe the field of the target person, the preference information for task execution, the responsible area, and the task execution situation. For example, the area responsible for by Target Person 1, the familiar fields and unfamiliar fields, whether the task is executed quickly or slowly, etc. The task execution situation can be used to represent the accuracy of each task execution, etc. At the same time, the user permissions of the target person can also be retrieved.
[0056] Furthermore, the display information within the user permissions corresponding to the target person can be retrieved from the site server. The display information may include one or more of the monitoring images of the offshore photovoltaic construction site, alarm information, personnel allocation information, construction process information, and feedback information. For example, the operation instruction manual of the latest construction process can be retrieved, or the project plan, project cost, etc. can be retrieved. Different target persons have different permissions, and the types of display information are also different. For example, first-level personnel can display monitoring images, alarm information, personnel allocation information, construction process information, task execution results, and feedback information. Second-level personnel can display monitoring images, alarm information, construction process information, task execution results, and feedback information. Third-level personnel can display task execution results and feedback information.
[0057] Exemplarily, when displaying, the operation interface can be divided into a first display area and multiple second display areas. Among them, the first display area can be the display area with a relatively large proportion in the content display area of the operation interface and is used as the main display area for detailed information. The second display area can be the display area with a relatively small proportion in the content display area and is used as the auxiliary display information area. For example, 60% of the display area in the content display area is used as the first display area, and 40% of the display area is used as the second display area. The number of first display areas can be set to one, and of course, it can also be set to two. The number of second display areas can be determined according to the number of photovoltaic areas. Of course, the second display area can also not be set in the content display area. The specific situation can be customized according to the user's usage habits, and this exemplary embodiment does not make special limitations on this.
[0058] In the embodiments of the present disclosure, the monitoring screens of the photovoltaic devices in multiple photovoltaic areas can be displayed in the first display area, and the monitoring screens of the photovoltaic devices in each photovoltaic area can be independently displayed. Since each photovoltaic area can include multiple cameras, the monitoring screens of each camera can also be independently displayed. Exemplarily, in the second display area, the photovoltaic devices corresponding to the abnormal feedback information in each photovoltaic area can be displayed. It should be noted that if the number of photovoltaic devices with abnormal feedback information is greater than the number of second display areas, the photovoltaic devices with abnormal feedback information in each photovoltaic area can be dynamically switched for display. In addition, other information in the display information can be independently displayed in the form of a floating window in the blank area outside the first display area and the second display area, such as one or more of the warning information, personnel allocation information, construction process information, and feedback information.
[0059] Refer to Figure 2 As shown, the monitoring screens of the photovoltaic devices in multiple photovoltaic areas can be displayed in the first display area 210. The multiple photovoltaic areas are, for example, Area 1, Area 2, Area 3, and Area 4. The monitoring screens of the multiple cameras in each photovoltaic area can also be independently displayed. The detailed information of the photovoltaic devices corresponding to the abnormal feedback information in each photovoltaic area can be displayed in the multiple second display areas 220. For example, the detailed information of Photovoltaic Device 1, Photovoltaic Device 2, Photovoltaic Device 3, and Photovoltaic Device 4 can be displayed. The detailed information can include the structure of the photovoltaic device and the abnormal feedback information existing in the photovoltaic device. In addition, other information in the display information can also be independently displayed in the form of a floating window in the blank area, such as the warning information, personnel allocation information, construction process information, and feedback information.
[0060] Figure 3 A schematic diagram of the monitoring screen of each photovoltaic area is schematically shown. Refer to Figure 3As shown, the monitoring images of multiple cameras can be displayed sequentially according to the camera numbers or in a disordered order, and no specific limitation is made here.
[0061] In addition, instant messaging controls can be displayed at the preset positions of the operation interface. When a click operation on the instant messaging controls is detected, multiple personnel related to the offshore PV construction site can be determined. After the target user determines the personnel to communicate with, instant messaging with this person can be triggered to achieve instant communication with on-site or remote personnel.
[0062] In some embodiments, the information management system of offshore PV further includes: a construction progress prediction module, configured to input the construction progress of the current period and the external environment parameters of the next period into the first convolutional neural network model, and output the initial predicted construction progress of the next period; a construction progress correction module, configured to determine the weight parameters of the next period according to the task executor configuration, resource allocation situation, progress requirements of the next period, and construction progress feedback information of the next period, and correct the initial predicted construction progress based on the weight parameters to determine the predicted construction progress of the next period.
[0063] Exemplarily, the first convolutional neural network model is trained according to the historical construction progress of the historical period and the external environment parameters of the historical period, and then the construction progress of the current period and the external environment parameters of the next period are processed by the model based on the first convolutional neural network model, so as to output the initial predicted construction progress within the next period. Exemplarily, the construction progress of the current period and the external environment parameters of the next period can be input into the first convolutional neural network model for convolutional processing and fully connected processing, so as to output the initial predicted construction progress of the next period. Further, the weight parameters of the next period are determined according to the task executor configuration, resource allocation situation, construction progress requirements of the next period, and construction progress feedback information of the next period, and the initial predicted construction progress output according to the first convolutional neural network model is corrected based on the weight parameters to determine the predicted construction progress of the next period. Among them, the task executor configuration, resource allocation situation, construction progress requirements of the next period, and construction progress feedback information of the next period all correspond to an adjustment value, and multiple adjustment values can be weighted and summed to obtain the weight parameters. The period can be daily, weekly or monthly, and no specific limitation is made here.
[0064] By predicting the construction progress of the next period, the construction progress of the next period can be clearly grasped, so as to achieve flexible adjustment.
[0065] In addition, the information management system for offshore PV also includes: a PV device adjustment module, specifically including: a performance parameter determination module for determining the performance parameters of PV devices in the PV area that has been installed; a performance parameter adjustment module for adjusting the installation parameters of PV devices according to the performance feedback information of the PV devices to correct the performance parameters; an installation parameter prediction module for inputting the corrected performance parameters and external environment parameters into the second convolutional neural network model to determine the predicted installation parameters of the PV devices that have not been installed; and an installation parameter adjustment module for adjusting the predicted installation parameters of the PV devices when the performance parameters of the PV devices deployed based on the predicted installation parameters do not meet the performance conditions in response to the triggering operation of the PV device function buttons on the operation interface.
[0066] Among them, as shown in Figure 4 it can be determined first the performance parameters of the PV devices that have been installed. The performance parameters of the PV devices may include the power, voltage, current, power generation efficiency, and waterproof performance of the PV devices, etc. For PV devices that do not meet the requirements, they need to be marked and isolated in time to avoid flowing into the subsequent installation links. Based on this, the installation parameters of the PV devices can be adjusted according to the performance feedback information of the PV devices that have been installed and the external environment parameters, and the performance parameters of the PV devices after adjusting the installation parameters can be determined. The installation parameters can be one or more of the installation location, installation angle, and installation distance. The installation angle and installation distance of the PV devices have an important impact on their power generation efficiency. The installation angle and installation distance can also be determined according to different external environment parameters.
[0067] Next, the corrected performance parameters and external environment parameters can be input into the second convolutional neural network model to predict the installation parameters of the photovoltaic device that has not been fully installed to obtain predicted installation parameters, such as the installation location, installation angle, and installation distance of the photovoltaic device that has not been fully installed. The second convolutional neural network model can be trained based on the data composed of the performance parameters of the photovoltaic devices that have been fully installed and the external environment parameters. Further, after determining the predicted installation parameters of the photovoltaic device that has not been fully installed, the photovoltaic device can be deployed based on the predicted installation parameters, and the performance parameters of the photovoltaic device can be calculated. If the performance parameters of the photovoltaic device deployed based on the predicted installation parameters do not meet the performance conditions, it is possible to detect whether a trigger operation on the photovoltaic device function button on the operation interface is received to determine whether an adjustment operation on the photovoltaic device is received. When an adjustment operation is detected, the installation parameters of the photovoltaic device are adjusted based on the adjustment operation. The adjustment operation here can be triggered based on the photovoltaic device function button. The photovoltaic device function button can be a function button on the control device at the offshore photovoltaic construction site for controlling the installation parameters of the photovoltaic device, or a photovoltaic device function button in the mobile terminal; the adjustment operation can also be triggered by adjusting the photovoltaic device. In the embodiments of the present disclosure, remote or on-site adjustment operations on the photovoltaic device can be realized, so as to roughly understand the installation situation of the photovoltaic device that has not been fully installed.
[0068] In some embodiments, the information management system for offshore photovoltaic can further include: an abnormal alarm module, which is used to determine the abnormal level of the abnormal feedback information in the feedback information, and generate corresponding alarm information based on the abnormal level, and transmit the alarm information to the audio device and the mobile terminal of the responsible person corresponding to the abnormal level. Exemplarily, the abnormal level refers to the degree of abnormal influence. If the abnormal feedback information is at the first level, the alarm information can be sent to the management personnel, the overall responsible person, and the specific responsible person, so that the management personnel, the overall responsible person, and the specific responsible person can know the processing progress of the abnormal feedback information and process the task request in a timely manner. If the abnormal feedback information is at the second level, the alarm information can be sent to the specific responsible person, so that the specific responsible person can know the processing progress of the abnormal feedback information. In addition, the alarm information can also be transmitted to the audio device. The audio device can be, for example, a broadcast or a speaker connected to the mobile terminal at the offshore photovoltaic construction site. At this time, the mobile terminal can be regarded as a microphone associated with the speaker, and real-time alarm broadcasting can be realized through the audio device.
[0069] The information management system for offshore photovoltaic power generation may further include a maintenance advice module, which is configured to generate maintenance advice for photovoltaic devices according to the abnormal feedback information. Exemplarily, maintenance advice may be generated for photovoltaic devices with abnormal feedback information. For other photovoltaic devices without abnormal feedback information, a maintenance plan for each photovoltaic device may be generated according to the operation data of the photovoltaic device and the historical maintenance plan of the photovoltaic device. The maintenance plan may include the maintenance time, maintenance items, and maintenance methods.
[0070] The information management system for offshore photovoltaic power generation may further include a personnel management module, which is configured to uniformly manage the personnel data of multiple personnel at the offshore photovoltaic construction site. Exemplarily, the personnel information of multiple personnel may be queried. When the personnel information of a certain person does not exist, the personnel information of this person may be newly added to realize the input of personnel information. When the personnel information of a certain person changes, the personnel information may be modified and updated, and the invalid personnel information may be deleted.
[0071] The information management system for offshore photovoltaic power generation in the embodiments of the present disclosure realizes the unified management of the feedback information for the offshore photovoltaic construction site, executes corresponding tasks according to the feedback information, then displays the task execution information, and displays the display information within the target personnel's authority on the operation interface, which can realize the unified management of the offshore photovoltaic project, improve the operation management efficiency, and achieve standardized management. Further, it avoids the limitations of manual management, increases the information dimension of management, improves the management efficiency and convenience, improves the efficiency and comprehensiveness of the offshore photovoltaic project management, and improves the production operation efficiency of offshore photovoltaic power generation.
[0072] The present disclosure also provides an information management method for offshore photovoltaic power generation. Refer to Figure 5 As shown, this information management method for offshore photovoltaic power generation can be applied to a mobile terminal, and this method mainly includes the following steps:
[0073] In step S510, obtain the external environment parameters collected by multiple sensors, and obtain the operation data of the photovoltaic devices in the photovoltaic area where the installation has been completed;
[0074] In step S520, obtain the feedback information for the offshore photovoltaic construction site and specify the transmission direction of the feedback information; the feedback information includes the abnormal feedback information determined according to the external environment parameters and the operation data and other feedback information of the offshore photovoltaic construction site;
[0075] In step S530, after the feedback information is sent to the target terminal in the transmission direction, a target task is generated according to the feedback information, a task execution strategy corresponding to the target task is determined in combination with external environment parameters, and the target task is sent to the target terminal so that the target terminal uploads the task execution result obtained by executing the target task based on the task execution strategy;
[0076] In step S540, the task execution information of the target task is displayed, and in response to the trigger operation of the target person, the display information within the user permissions corresponding to the target person is displayed on the operation interface.
[0077] In the embodiment of the present disclosure, the information management system for offshore photovoltaic power generation generates a target task based on the feedback information obtained for the offshore photovoltaic construction site, executes the corresponding target task based on the task execution strategy, and then displays the task execution information and displays the display information within the permissions of the target person on the operation interface, which can realize the unified management of the offshore photovoltaic project, improve the operation management efficiency, and realize the standardized management of the offshore photovoltaic construction site. It avoids the limitations of manual management, increases the information dimension of management, improves the management efficiency and convenience, improves the efficiency and comprehensiveness of the management of the offshore photovoltaic project, and improves the production and operation efficiency of the offshore photovoltaic power generation.
[0078] It should be noted that although several modules or units of the device for action execution are mentioned in the above detailed description, this division is not mandatory. In fact, according to the embodiments of the present disclosure, the features and functions of the two or more modules or units described above can be embodied in one module or unit. Conversely, the features and functions of one module or unit described above can be further divided into multiple modules or units for embodiment.
[0079] In addition, although the steps of the method in the present disclosure are described in a specific order in the drawings, this does not require or imply that these steps must be executed in this specific order, or that all the steps shown must be executed to achieve the desired result. Additionally or alternatively, some steps may be omitted, multiple steps may be combined into one step for execution, and / or one step may be decomposed into multiple steps for execution, etc.
[0080] In an exemplary embodiment of the present disclosure, an electronic device capable of implementing the above method is also provided.
[0081] Those skilled in the art of the present disclosure can understand that various aspects of the present disclosure can be implemented as a system, a method, or a program product. Therefore, various aspects of the present disclosure can be specifically implemented in the following forms, namely: a complete hardware implementation, a complete software implementation (including firmware, microcode, etc.), or an implementation combining hardware and software aspects, which can be collectively referred to as "circuit", "module", or "system" here.
[0082] Refer to the following Figure 6 to describe the electronic device 600 according to this embodiment of the present disclosure. Figure 6 The illustrated electronic device 600 is merely an example and should not impose any limitation on the functions and scope of use of the embodiments of the present disclosure.
[0083] As Figure 6 shown, the electronic device 600 is presented in the form of a general-purpose computing device. The components of the electronic device 600 may include, but are not limited to: at least one of the above-mentioned processing units 610, at least one of the above-mentioned storage units 620, a bus 630 connecting different system components (including the storage unit 620 and the processing unit 610), and a display unit 640.
[0084] Among them, the storage unit stores program code, and the program code can be executed by the processing unit 610, so that the processing unit 610 executes the steps according to various exemplary embodiments of the present disclosure described in the above "Exemplary Method" section of this specification. For example, the processing unit 610 can execute the steps as Figure 5 shown in.
[0085] The storage unit 620 may include a readable medium in the form of a volatile storage unit, such as a random access storage unit (RAM) 6201 and / or a cache storage unit 6202, and may further include a read-only storage unit (ROM) 6203.
[0086] The storage unit 620 may further include a program / utility 6204 having a set (at least one) of program modules 6205. Such program modules 6205 include, but are not limited to: an operating system, one or more application programs, other program modules, and program data. Each or some combination of these examples may include the implementation of a network environment.
[0087] The bus 630 may represent one or more of several types of bus structures, including a storage unit bus or a storage unit controller, a peripheral bus, a graphics acceleration port, a processing unit, or a local bus using any bus structure in a variety of bus structures.
[0088] The electronic device 600 can also communicate with one or more external devices 700 (such as a keyboard, a pointing device, a Bluetooth device, etc.), and can also communicate with one or more devices that enable a user to interact with the electronic device 600, and / or communicate with any device that enables the electronic device 600 to communicate with one or more other computing devices (such as a router, a modem, etc.). Such communication can be carried out through the input / output (I / O) interface 650. Moreover, the electronic device 600 can also communicate with one or more networks (such as a local area network (LAN), a wide area network (WAN), and / or a public network, such as the Internet) through the network adapter 660. As Figure 6 shown, the network adapter 660 communicates with other modules of the electronic device 600 through the bus 630. It should be understood that although not shown in the figure, other hardware and / or software modules can be used in combination with the electronic device 600, including but not limited to: microcode, device drivers, redundant processing units, external disk drive arrays, RAID systems, tape drives, and data backup storage systems, etc.
[0089] It should be noted that in some embodiments of the present disclosure, a computer program product is also provided. The computer program product includes a computer program, and when the computer program is executed by a processor, the above method is implemented.
[0090] In one implementation, the computer program product can be a tangible product containing a computer program, such as a computer-readable storage medium storing the computer program. The readable storage medium can be a storage medium based on signals such as electricity, magnetism, light, electromagnetic, infrared, etc., including but not limited to: random access memory (RAM), read-only memory (ROM), magnetic tape, floppy disk, flash memory (Flash), hard disk drive (HDD), solid state drive (SSD), etc. Exemplarily, the computer program product can be implemented as a non-volatile storage medium storing the computer program, such as read-only memory, Nand Flash, etc. In one implementation, the computer program product can be an intangible product containing a computer program. Exemplarily, the computer program product can be implemented as a virtual digital product, such as an executable file storing the computer program, an installation package, and other digital files.
[0091] The code of a computer program can be written in one or more programming languages. Examples of programming languages include C, Java, C++, etc. The program code can be executed entirely on the user's computing device, or partially on the user's computing device, or as an independent software package, or partially on the user's computing device and partially on a remote computing device, or entirely on a remote computing device or server. In cases involving a remote computing device, the remote computing device can be connected to the user's computing device through any type of network, such as a local area network (LAN), wide area network (WAN), etc., or it can be connected to an external computing device (e.g., through an Internet connection provided by an operator).
[0092] A computer program can be carried or transmitted by signals such as electrical, magnetic, optical, electromagnetic, infrared, etc. An electronic device can convert the signal carrying the computer program into a digital signal and then run the computer program. When the computer program runs on an electronic device, its code is used to cause the electronic device to execute (more specifically, to cause the processor of the electronic device to execute) the method steps of various exemplary embodiments of the present disclosure.
[0093] From the description of the above embodiments, those skilled in the art can easily understand that the exemplary embodiments described herein can be implemented by software or by a combination of software and necessary hardware. Therefore, the technical solutions according to the embodiments of the present disclosure can be embodied in the form of a software product, which can be stored in a non-volatile storage medium (which can be a CD-ROM, USB flash drive, external hard drive, etc.) or on a network, including several instructions to cause a computing device (which can be a personal computer, server, terminal device, or network device, etc.) to execute the method according to the embodiments of the present disclosure.
[0094] In addition, the above-mentioned drawings are only schematic illustrations of the processes included in the method according to the exemplary embodiments of the present disclosure, rather than for limiting purposes. It is easy to understand that the processes shown in the above-mentioned drawings do not indicate or limit the time sequence of these processes. Additionally, it is also easy to understand that these processes can be executed, for example, synchronously or asynchronously in multiple modules.
[0095] It should be noted that although several modules or units of devices for action execution are mentioned in the above detailed description, such a division is not mandatory. In fact, according to the embodiments of the present disclosure, the features and functions of two or more of the above-mentioned modules or units can be embodied in one module or unit. Conversely, the features and functions of one module or unit described above can be further divided and embodied by multiple modules or units.
[0096] Other embodiments of the present disclosure will be readily apparent to those skilled in the art upon consideration of the specification and practice of the disclosure herein. This application is intended to cover any variations, uses, or adaptations of the present disclosure that follow the general principles of the present disclosure and include known common general knowledge or conventional technical means in the technical field not disclosed herein. The specification and examples are only to be considered as exemplary, and the true scope and spirit of the present disclosure are pointed out by the claims.
[0097] It should be understood that the present disclosure is not limited to the exact structures described above and shown in the drawings, and various modifications and changes can be made without departing from its scope. The scope of the present disclosure is only limited by the appended claims.
Claims
1. An offshore photovoltaic information management system, characterized in that: Applied to a mobile terminal, the offshore photovoltaic information management system comprises: A data acquisition module is used to acquire external environmental parameters collected by multiple sensors and to acquire operating data of photovoltaic equipment in the photovoltaic area where the installation has been completed; A site feedback module, used to obtain feedback information for the offshore photovoltaic construction site and specify the transmission direction of the feedback information; the feedback information includes abnormal feedback information determined according to the external environment parameters and the operation data and other feedback information of the offshore photovoltaic construction site; A task processing module is used to generate a target task according to the feedback information after sending the feedback information to the target terminal according to the transmission direction, determine the task execution strategy corresponding to the target task in combination with the external environment parameters, and send the target task to the target terminal, so that the target terminal uploads the task execution result obtained by executing the target task based on the task execution strategy; An information display module is used to display the task execution information of the target task, and in response to the trigger operation of the target person, display the display information within the user authority corresponding to the target person on the operation interface; A performance parameter determination module, used to determine the performance parameters of the photovoltaic equipment in the photovoltaic area that has been installed; A performance parameter adjustment module, used to adjust the installation parameters of the photovoltaic device according to the performance feedback information of the photovoltaic device to correct the performance parameters; An installation parameter prediction module is used to input the corrected performance parameters and external environmental parameters into a second convolutional neural network model to determine the predicted installation parameters of the photovoltaic equipment that has not been installed; the second convolutional neural network model is trained based on data consisting of performance parameters of the photovoltaic equipment that has been installed and external environmental parameters; An installation parameter adjustment module, configured to adjust the predicted installation parameters of the photovoltaic equipment in response to a triggering operation on a photovoltaic equipment function button on an operation interface when the performance parameters of the photovoltaic equipment set based on the predicted installation parameters do not meet the performance conditions; Wherein, the task processing module includes: A target task determination module, used to determine the target task according to the type of the feedback information; A task execution module is used to determine, according to the external environment parameters, that the task execution strategy of the target task is to allow execution, determine the task execution range according to the feedback content in the feedback information, and execute the target task according to the task execution range to determine the task execution result; A task execution stopping module is used to stop executing the target task when it is determined according to the external environment parameter that the task execution policy of the target task is execution prohibition; The target task determination module includes: A first task determination module, configured to determine the target task as an exception handling task if the type of the feedback information is device exception feedback information in the exception feedback information; A second task determination module, configured to determine the target task as a suggested evaluation task if the type of the feedback information is suggested feedback information; A third task determination module, configured to determine the target task as a construction progress adjustment task if the type of the feedback information is construction progress feedback information; a fourth task determination module, configured to determine the target task as a construction quality adjustment task if the type of the feedback information is construction quality feedback information; The fifth task determination module is configured to determine the target task as a photovoltaic equipment adjustment task if the type of the feedback information is performance feedback information of the photovoltaic equipment.
2. The offshore photovoltaic information management system according to claim 1, characterized in that: The information display module comprises: A user authority determination module, used to obtain user authority of a target person associated with an offshore photovoltaic construction site; A display information determination module, for retrieving display information within the user authority of the target person in response to a user trigger operation; the display information includes one or more of monitoring images of the offshore photovoltaic construction site, alarm information, personnel allocation information, construction process information, task execution results, and feedback information; A first display module, used to display a monitoring screen of photovoltaic equipment in each photovoltaic area in a first display area on the operation interface; The second display module is used to display detailed information of the photovoltaic equipment corresponding to the abnormal feedback information in each photovoltaic area in the second display area; The third display module is used to independently display one or more of alarm information, personnel allocation information, construction process information, and feedback information in the form of a floating window in the blank area outside the first display area and the second display area.
3. The offshore photovoltaic information management system according to claim 1, characterized in that: The offshore photovoltaic information management system also includes: The instant messaging module is used to respond to a click operation on an instant messaging control on the operation interface and to communicate instantly with personnel related to the offshore photovoltaic construction site.
4. The offshore photovoltaic information management system according to claim 1, characterized in that: The offshore photovoltaic information management system also includes: A construction progress prediction module, used to input the construction progress of the current cycle and the external environment parameters of the next cycle into a first convolutional neural network model, and output an initial predicted construction progress of the next cycle; the first convolutional neural network model is trained based on the historical construction progress of the historical cycle and the external environment parameters of the historical cycle; The construction progress correction module is used to determine the weight parameters of the next cycle according to the task execution personnel configuration, resource allocation, construction progress requirements of the next cycle and construction progress feedback information of the next cycle, and to correct the initial predicted construction progress based on the weight parameters to determine the predicted construction progress of the next cycle.
5. The offshore photovoltaic information management system according to claim 1, characterized in that: The offshore photovoltaic information management system also includes: an alarm module, configured to determine an abnormality level of abnormal feedback information in the feedback information, generate corresponding alarm information based on the abnormality level, and transmit the alarm information to an audio device and a mobile terminal of a responsible person corresponding to the abnormality level; A maintenance suggestion module, used for generating maintenance suggestions for the photovoltaic equipment according to the abnormal feedback information; The maintenance plan generating module is used to generate a maintenance plan for each photovoltaic device according to the operation data of the photovoltaic device and the historical maintenance plan of the photovoltaic device.
6. An offshore photovoltaic information management method, characterized in that: Applied to a mobile terminal, the offshore photovoltaic information management method comprises: Acquire external environmental parameters collected by multiple sensors and obtain operating data of photovoltaic equipment in the photovoltaic area where installation has been completed; Acquire feedback information for an offshore photovoltaic construction site, and specify a transmission direction of the feedback information; the feedback information includes abnormal feedback information determined according to the external environment parameters and the operation data and other feedback information of the offshore photovoltaic construction site; After the feedback information is sent to the target terminal according to the transmission direction, a target task is generated according to the feedback information, a task execution strategy corresponding to the target task is determined in combination with the external environment parameters, and the target task is sent to the target terminal, so that the target terminal uploads a task execution result obtained by executing the target task based on the task execution strategy; Display the task execution information of the target task, and in response to the trigger operation of the target person, display the display information within the user authority corresponding to the target person on the operation interface; Determine the performance parameters of the photovoltaic equipment in the photovoltaic area where the installation has been completed; adjust the installation parameters of the photovoltaic equipment according to the performance feedback information of the photovoltaic equipment to correct the performance parameters; input the corrected performance parameters and external environmental parameters into the second convolutional neural network model to determine the predicted installation parameters of the photovoltaic equipment that has not been installed; the second convolutional neural network model is trained based on the data consisting of the performance parameters of the photovoltaic equipment that has been installed and the external environmental parameters; when the performance parameters of the photovoltaic equipment set based on the predicted installation parameters do not meet the performance conditions, respond to the triggering operation of the photovoltaic equipment function button on the operation interface, and adjust the predicted installation parameters of the photovoltaic equipment; Among them, generating a target task according to the feedback information, determining a task execution strategy corresponding to the target task in combination with the external environment parameters, and sending the target task to the target terminal so that the target terminal uploads a task execution result obtained by executing the target task based on the task execution strategy, including: Determining the target task according to the type of the feedback information; When it is determined according to the external environment parameters that the task execution strategy of the target task is to allow execution, the task execution range is determined according to the feedback content in the feedback information, and the target task is executed according to the task execution range to determine the task execution result; When it is determined according to the external environment parameter that the task execution policy of the target task is to prohibit execution, stopping execution of the target task; The determining the target task according to the type of the feedback information includes: If the type of the feedback information is device abnormality feedback information in abnormal feedback information, determining the target task as an abnormality handling task; If the type of the feedback information is suggestion feedback information, determining the target task as a suggestion evaluation task; If the type of the feedback information is construction progress feedback information, determining the target task as a construction progress adjustment task; If the type of the feedback information is construction quality feedback information, determining the target task as a construction quality adjustment task; If the type of the feedback information is performance feedback information of a photovoltaic device, the target task is determined as a photovoltaic device adjustment task.
7. An electronic device, characterized in that: include: processor; A memory, configured to store executable instructions of the processor; The processor is configured to implement the offshore photovoltaic information management method of claim 6 by executing the executable instructions.
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