Data real-time display method, system and equipment and medium

By acquiring the production factors of the nuclear power production system, dynamically managing the data type and display frequency, and adopting an independent database and directional reading instructions, the problem of low efficiency of real-time data display in the existing technology is solved, efficient and timely real-time data display is achieved, and the resource utilization and reliability of the nuclear power production monitoring system are optimized.

CN120705159APending Publication Date: 2025-09-26CHINA NUCLEAR POWER ENGINEERING COMPANY LTD +1
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Patent Information

Application Number
CN202510801663.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-16
Publication Date
2025-09-26

AI Technical Summary

Technical Problem

Existing real-time data display methods are inefficient, especially when the data volume is large and the updates are frequent, it is difficult to ensure timeliness and accuracy.

Method used

By obtaining the production factors of the nuclear power production system, determining their data types and display update frequency, and using the configuration file to dynamically manage system identification and production factor mapping, automatic data reading and display are achieved. An independent database is used to isolate data access, and directional reading instructions are generated based on data type and location. Display and refresh are performed according to the preset frequency.

Benefits of technology

It realizes the automation of data reading and display, improves efficiency and timeliness, ensures the real-time visualization of nuclear power production data, optimizes system resource allocation, and reduces the complexity of operation and maintenance and the difficulty of cross-platform data integration.

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Abstract

The invention relates to the field of data management, in particular to a data real-time display method, system and device and a medium, and the method comprises the steps: obtaining all production elements of different nuclear power production systems to be displayed; for each production element, acquiring a data type corresponding to the production element, and determining a display updating frequency of the production element according to the data type; according to the display updating frequency, obtaining production data of the production elements from a display database, and displaying and refreshing the production data; wherein the production data in the display database is obtained by reading from the production database of the corresponding nuclear power production system according to different production elements and the reading updating frequency. According to the invention, automation of data reading and display is realized, and the display efficiency and timeliness are greatly improved.
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Description

Technical Field

[0001] The present invention relates to the field of data management, and in particular to a method, system, device and medium for real-time data display. Background Art

[0002] Real-time production data plays a crucial role in modern industrial production. Real-time production data refers to data collected and generated in real time by various equipment, instruments, and control systems during the production process. It reflects the real-time status and operating parameters of the production process. For example, in nuclear power systems, real-time production data from desalinated water production systems can include water quality parameters, flow rate, and pressure. Real-time production data from radioactive waste treatment plant control systems can include radioactivity levels, temperature, and humidity. This data is crucial for monitoring production processes, optimizing process parameters, and ensuring equipment safety and product quality. To fully leverage the value of real-time production data, it must be displayed in real time so that operators and managers can promptly understand production status and make informed decisions. Real-time display involves processing, converting, and visualizing the collected production data, presenting it on a display screen in the form of charts, curves, and numerical values. This data can be dynamically updated to reflect real-time changes in the production process.

[0003] However, existing methods for real-time data display primarily rely on manual conversion, meaning data is manually extracted from the databases of various nuclear power production systems for display. This method is highly inefficient, especially when data volumes are large and updates are frequent. Manual conversion struggles to keep up with the pace of data changes, making it difficult to ensure timely and accurate display. Summary of the Invention

[0004] To solve the above problems, the present invention provides a method, system, device and medium for real-time data display.

[0005] The first aspect of the present invention discloses a method for real-time data display, comprising:

[0006] Obtaining various production factors of different nuclear power production systems to be displayed;

[0007] For each factor of production:

[0008] Get the corresponding data type;

[0009] Determining a display update frequency of the production factor according to the data type;

[0010] According to the display update frequency, the production data of the production factors are obtained from the display database for display and refresh; wherein, the production data in the display database is read from the production database of the corresponding nuclear power production system according to the reading update frequency based on different production factors.

[0011] Furthermore, the nuclear power production system includes at least one of the following systems:

[0012] Digital control system, desalted water production system, test instrument system, and radioactive waste treatment plant control system.

[0013] Furthermore, the step of obtaining various production factors of different nuclear power production systems to be displayed includes:

[0014] All production factors corresponding to each nuclear power production system are retrieved from the configuration file according to the identifier of each nuclear power production system.

[0015] Furthermore, the production data in the display database is obtained according to the following steps:

[0016] Retrieve the data type and data table location corresponding to each production factor from the configuration file;

[0017] Determine the corresponding reading and updating frequency according to the data type corresponding to each production factor;

[0018] According to the data table location and reading and updating frequency corresponding to each production factor, the corresponding production data is read from the production database of the nuclear power production system corresponding to the production factor.

[0019] Furthermore, according to the data table location and reading and updating frequency corresponding to each production factor, the step of reading corresponding production data from the production database of the nuclear power production system corresponding to the production factor includes:

[0020] Determine the production database of the nuclear power production system corresponding to each production factor;

[0021] Determining the data reading location corresponding to the production factor according to the production database and the data table location;

[0022] Generate a data reading instruction corresponding to each production factor according to the data type and the data reading position;

[0023] The data reading instruction is executed according to the read update frequency to read the production data.

[0024] Furthermore, the step of obtaining the production data of the production factor from the display database for display and refreshing according to the display update frequency includes:

[0025] Reading the production data of the production factor from the display database;

[0026] Displaying the production data according to the data type;

[0027] The displayed production data is refreshed according to the display update frequency.

[0028] Furthermore, according to the data type, the step of obtaining the production data of the production factor from the display database for display includes:

[0029] When the data type is a switch type, it is displayed according to a preset switch display format;

[0030] When the data type is a numeric type, it is displayed according to the preset precision;

[0031] When the data type is character type, it is displayed according to a preset font.

[0032] A second aspect of the present invention discloses a real-time data display system, comprising:

[0033] A first acquisition module is used to acquire various production factors of different nuclear power production systems to be displayed;

[0034] The second acquisition module is used to obtain the corresponding data type for each production factor;

[0035] a determination module, configured to determine, for each production factor, a display update frequency of the production factor according to the data type;

[0036] The display refresh module is used to obtain the production data of the production factors from the display database for display and refresh according to the display update frequency; wherein the production data in the display database is read from the production database of the corresponding nuclear power production system according to the reading update frequency based on different production factors.

[0037] The third aspect of the present invention discloses an electronic device, which includes a memory, a processor, and a computer program stored in the memory and runnable on the processor. The device is characterized in that when the processor executes the computer program, it implements the steps of any one of the real-time data display methods disclosed in the first aspect of the present invention.

[0038] The fourth aspect of the present invention discloses a storage medium storing a computer program, wherein the computer program, when executed by a processor, implements the steps of any one of the methods for real-time data display disclosed in the first aspect of the present invention.

[0039] The present invention obtains the production factors corresponding to each nuclear power production system, determines its specific location in the production database, reads its corresponding production data, stores it in a special display database, and then displays it according to the production data in the display database. This overcomes the shortcomings of existing methods, realizes the automation of data reading and display, and greatly improves the efficiency and timeliness of display. BRIEF DESCRIPTION OF THE DRAWINGS

[0040] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.

[0041] Figure 1 This is a flow chart of a method for real-time data display disclosed in an embodiment of the present invention;

[0042] Figure 2 This is a structural diagram of a real-time data display system disclosed in an embodiment of the present invention;

[0043] Figure 3 It is a schematic structural diagram of an electronic device disclosed in an embodiment of the present invention. DETAILED DESCRIPTION

[0044] In order to enable those skilled in the art to better understand the solutions of the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the embodiments described 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.

[0045] The terms "first," "second," and so on, in the description and claims of the present invention and the accompanying drawings are used to distinguish between different objects, not to describe a specific order. Furthermore, the terms "including," "having," and any variations thereof, are intended to cover non-exclusive inclusions. For example, a process, method, apparatus, or product comprising a series of steps or elements is not limited to the listed steps or elements, but may optionally include steps or elements not listed, or may optionally include other steps or elements inherent to the process, method, apparatus, or product.

[0046] References herein to "embodiments" mean that a particular feature, structure, or characteristic described in connection with the embodiments may be included in at least one embodiment of the present invention. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor does it constitute a separate or alternative embodiment that is mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described herein may be combined with other embodiments.

[0047] See also Figure 1 As shown, Figure 1 This is a flow chart of a method for real-time data display disclosed in an embodiment of the present invention. Figure 1 As shown, the real-time data display method may include the following operations:

[0048] S101. Acquire various production factors of different nuclear power production systems to be displayed;

[0049] In an optional embodiment, the nuclear power production system includes at least one of the following systems:

[0050] Digital control system, desalted water production system, test instrument system, and radioactive waste treatment plant control system.

[0051] In this optional embodiment, the digital control system is the core control unit for nuclear power plant operations. It collects key parameters such as reactor temperature, pressure, and flow in real time, generates control instructions through logical operations, and drives actuators such as control rods and cooling pumps to ensure stable nuclear reactor power and the integrity of safety barriers. This system utilizes a redundant communication network and distributed controller architecture to achieve high-speed data transmission and fault tolerance, providing 24 / 7 automated operation support for the nuclear power plant.

[0052] The demineralized water production system provides ultrapure water for the nuclear island's secondary circuit. Through multi-stage filtration, ion exchange, and reverse osmosis, it removes impurities and particulate matter from the raw water, ensuring that the water quality meets the stringent chemical specifications of the steam generators. The system is equipped with online conductivity monitoring and automatic regeneration devices, which adjust the resin's operating status in real time to ensure a continuous and stable supply of demineralized water.

[0053] The test instrumentation system is used for regular calibration and fault diagnosis of measuring equipment such as sensors and transmitters in nuclear power plants. By injecting a standard electrical signal through an analog signal generator, the system compares the output values ​​of field instruments to determine their accuracy deviations. The system integrates calibration functions for multiple physical quantities, including temperature, pressure, and flow, and supports automatic data recording and certificate generation, providing technical support for the reliability of the plant's measurement chain.

[0054] The radioactive waste treatment plant control system utilizes efficient filtration, evaporation, concentration, and solidification packaging processes to reduce the radioactivity of gaseous, liquid, and solid radioactive waste generated by nuclear power plant operations to below safety thresholds. This system isolates humans and machines through shielded containers and remotely operated manipulators, and monitors radiation doses and emission concentrations in real time during the waste treatment process to ensure compliance with national environmental regulations.

[0055] In another optional embodiment, the step of obtaining various production elements of different nuclear power production systems to be displayed includes:

[0056] All production factors corresponding to each nuclear power production system are retrieved from the configuration file according to the identifier of each nuclear power production system.

[0057] In this optional embodiment, the format of the configuration file can be any one of SER (Serialized Data Format) format, JSON (JavaScript Object Notation) format, XML (Extensible Markup Language) format, and CSV (Comma-Separated Values) format, which is not limited by the embodiment of the present invention.

[0058] The mapping relationship between nuclear power production systems and production factors needs to be dynamically adjusted with process upgrades or equipment modifications. If hard-coding is used to achieve such associations, the program source code needs to be frequently modified and recompiled and deployed, resulting in increased system downtime risks and maintenance costs. This embodiment uses configuration files such as the SER format to externalize the mapping rules between system identifiers and production factors, and uses binary serialization technology to achieve efficient storage and fast loading of configuration data. It also supports text formats such as JSON and XML to meet human readability requirements. Operation and maintenance personnel only need to update fields such as the system identifier and data table path in the configuration file to achieve real-time dynamic management of production factors and avoid repeated changes to the core program logic. In addition, the format compatibility design enables seamless access to heterogeneous systems in the same nuclear power plant, reducing the difficulty of cross-platform data integration, thereby ensuring the continuity of nuclear power production while improving system scalability and operation and maintenance flexibility.

[0059] S102. For each production factor, obtain its corresponding data type;

[0060] In this optional embodiment, the data type can be retrieved from the configuration file based on the production factor. For example, searching the configuration file for the production factor named item1 yields a string: item1.BOOL.DSWS.DCS_TagTable.DSWS_Flow. This string is then split using dots (.) to create multiple fields. The content of the second field is used as the data type. In this example, the data type is switch (BOOL).

[0061] S103. For each production factor, determine a display update frequency of the production factor according to the data type;

[0062] In this optional embodiment, the display update frequency can be preset for different data types. For example, the display update frequency of a production factor with a digital data type is preset to be updated every second, and the display update frequency of a switch-type production factor is preset to be updated every 10 seconds. The display update frequency can also be obtained from a configuration file, for example, the display update frequency of each data type or each production factor is set in the configuration file.

[0063] S104. Obtain the production data of the production factors from the display database for display and refresh according to the display update frequency; wherein the production data in the display database is obtained by reading from the production database of the corresponding nuclear power production system according to the reading update frequency based on different production factors.

[0064] In an optional embodiment, the production data in the display database is obtained according to the following steps:

[0065] Retrieve the data type and data table location corresponding to each production factor from the configuration file;

[0066] Determine the corresponding reading and updating frequency according to the data type corresponding to each production factor;

[0067] According to the data table location and reading and updating frequency corresponding to each production factor, the corresponding production data is read from the production database of the nuclear power production system corresponding to the production factor.

[0068] In this optional embodiment, the data type and data table location corresponding to each production factor can be retrieved from the configuration file based on the production factor. For example, searching the configuration file for the production factor named item1 yields a string: item1.BOOL.DSWS.DCS_TagTable.DSWS_Flow. This string is split using the period (.) to create multiple fields. The content of the second field is used as the data type, and the combined contents of the third and fourth fields are used as the data table location. In this particle, the data type is switch (BOOL), and the data table location is DSWS_Flow in the DCS_TagTable.

[0069] In this optional embodiment, the read update frequency can be preset for different data types. For example, the read update frequency of a production factor with a digital data type is preset to be updated every second, and the read update frequency of a switch-type production factor is preset to be updated every 10 seconds. The read update frequency can also be obtained from a configuration file, for example, the read update frequency of each data type or each production factor is set in the configuration file.

[0070] In an optional embodiment, based on the data table location and reading and updating frequency corresponding to each production factor, the step of reading corresponding production data from the production database of the nuclear power production system corresponding to the production factor includes:

[0071] Determine the production database of the nuclear power production system corresponding to each production factor;

[0072] Determining the data reading location corresponding to the production factor according to the production database and the data table location;

[0073] Generate a data reading instruction corresponding to each production factor according to the data type and the data reading position;

[0074] The data reading instruction is executed according to the read update frequency to read the production data.

[0075] In this optional embodiment, the data of each nuclear power production system is independently stored in a dedicated production database, which can effectively isolate the data access and storage load of different systems, avoid resource competition and lock conflicts during concurrent reading and writing of multiple systems, for example, the high-frequency real-time data of the digital control system and the medium-frequency process parameters of the desalted water system do not interfere with each other due to physical isolation. At the same time, the independent database can customize the storage strategy according to the characteristics of each system (such as real-time library memory table, time series database sharding), so as to improve data reading and writing efficiency and system stability.

[0076] Data reading instructions refer to query statements or API call commands constructed to extract target data from specific locations (such as data tables and fields) in the production database. Based on the reading update frequency, the instruction execution is triggered by a timer or event loop to ensure the real-time performance of high-frequency data while avoiding redundant queries of low-frequency data.

[0077] It can be seen that this optional embodiment realizes the accurate and efficient collection of multi-source heterogeneous data by allocating an independent database to each nuclear power production system, generating directional reading instructions based on data type and location, and scheduling execution based on preset frequency: independent database isolation ensures the data reading and writing priority and stability of key systems, avoiding resource preemption of low-priority tasks; instruction generation rules reduce redundant data transmission by adapting data types, alleviating network bandwidth pressure; the frequency scheduling mechanism dynamically balances real-time requirements and system load, while ensuring real-time monitoring of core parameters of nuclear power plants, extending the life cycle of edge devices, thereby achieving coordinated optimization of reliability and energy efficiency in complex industrial scenarios.

[0078] In an optional embodiment, the step of obtaining the production data of the production factor from the display database for display and refreshing according to the display update frequency includes:

[0079] Reading the production data of the production factor from the display database;

[0080] Displaying the production data according to the data type;

[0081] The displayed production data is refreshed according to the display update frequency.

[0082] In this optional embodiment, according to the display update frequency, each production factor can be refreshed individually according to the display update frequency corresponding to each production factor; or the display update frequencies of all production factors can be traversed to find the minimum display update frequency, and all production factors can be refreshed according to the minimum display update frequency; or the display update frequencies of all production factors can be traversed to calculate the average display update frequency, and all production factors can be refreshed according to the average display update frequency, which is not limited in the embodiment of the present invention.

[0083] It can be seen that this optional embodiment optimizes system resource allocation while ensuring real-time visualization of nuclear power production data through preset rules for display update frequency and diversified refresh mechanisms: timed polling provides a stable update rhythm for different data such as switch type and digital type, preventing high-frequency data from excessively consuming bandwidth and computing resources; the adaptive throttling mechanism automatically extends the refresh interval for slowly changing parameters to reduce redundant data transmission; event-driven can respond immediately when key parameters suddenly change, ensuring immediate visualization of abnormal conditions, thereby taking into account real-time, smoothness and system stability in complex monitoring scenarios, avoiding resource waste or key information delay problems caused by traditional fixed-frequency refresh, and improving the overall efficiency and reliability of nuclear power plant operation monitoring.

[0084] In an optional embodiment, the step of obtaining the production data of the production factor from the display database for display according to the data type includes:

[0085] When the data type is a switch type, it is displayed according to a preset switch display format;

[0086] When the data type is a numeric type, it is displayed according to the preset precision;

[0087] When the data type is character type, it is displayed according to a preset font.

[0088] For switch-type production factors, their production data may be displayed as: on / off, 0 / 1, TRUE / FALSE, ON / OFF, etc. in different production systems. In this optional embodiment, the switch display format can be on / off, 0 / 1, TRUE / FALSE, ON / OFF, etc., which is not limited by the embodiment of the present invention. For digital-type production factors, their production data can be uniformly set with precision in this optional embodiment, for example, the precision is two decimal places, and the insufficient precision is padded with zeros. For character-type production factors, their production data is displayed according to a preset font. For example, warning information uses a red bold monospaced font, and log text uses a gray standard font.

[0089] It can be seen that this optional embodiment realizes the standardization and automation of data expression in the nuclear power production monitoring interface through the strong association rules of predefined data types and display formats: the binary state mapping of switch-type data eliminates the risk of ambiguity in manual analysis and avoids misoperation due to format confusion; the precision unification and automatic addition of units of digital data ensure the comparability of cross-system parameters (such as temperature and pressure) and reduce the cognitive load of unit conversion for operation and maintenance personnel; the font adaptation of character-type data improves the recognition efficiency of key information through visual enhancement, and the standardized typesetting rules optimize the interface space utilization, thereby reducing the complexity of display configuration while significantly improving the readability and operational safety of monitoring data, providing intuitive and reliable human-computer interaction support for the efficient operation of nuclear power plants.

[0090] See also Figure 2 As shown, Figure 2 1 is a structural diagram of a real-time data display system disclosed in an embodiment of the present invention, comprising:

[0091] A first acquisition module 201 is used to acquire various production factors of different nuclear power production systems to be displayed;

[0092] The second acquisition module 202 is used to acquire the corresponding data type for each production factor;

[0093] A determination module 203 is configured to determine, for each production factor, a display update frequency of the production factor according to the data type;

[0094] The display refresh module 204 is used to obtain the production data of the production factors from the display database for display and refresh according to the display update frequency; wherein the production data in the display database is read from the production database of the corresponding nuclear power production system according to the reading update frequency based on different production factors.

[0095] For the specific definition of the real-time data display system, please refer to the definition of the real-time data display method above, which will not be repeated here. Each module in the above-mentioned real-time data display system can be implemented in whole or in part by software, hardware, or a combination thereof. The above-mentioned modules can be embedded in or independent of the processor in the electronic device in hardware format, or can be stored in the memory of the electronic device in software format, so that the processor can call the operations corresponding to the above modules.

[0096] It should be noted that, in order to highlight the innovative part of the present invention, this embodiment does not introduce modules that are not closely related to solving the technical problem proposed by the present invention, but this does not mean that there are no other modules in this embodiment.

[0097] like Figure 3As shown, the electronic device 1 provided by the present invention may include a memory 11, a processor 12 and a bus, and may also include a computer program stored in the memory 11 and executable on the processor 12, such as a real-time data display program.

[0098] Among them, the memory 11 includes at least one type of readable storage medium, and the readable storage medium includes a flash memory, a mobile hard disk, a multimedia card, a card-type memory (for example, an SD or DX memory, etc.), a magnetic memory, a magnetic disk, an optical disk, etc. In some embodiments, the memory 11 can be an internal storage unit of the electronic device 1, such as a mobile hard disk of the electronic device 1. In other embodiments, the memory 11 can also be an external storage device of the electronic device 1, such as a plug-in mobile hard disk, a smart memory card (Smart Media Card, SMC), a secure digital (Secure Digital, SD) card, a flash card (Flash Card), etc. equipped on the electronic device 1. Furthermore, the memory 11 can also include both an internal storage unit of the electronic device 1 and an external storage device. The memory 11 can not only be used to store application software and various types of data installed in the electronic device 1, such as code for real-time display of data, etc., but can also be used to temporarily store data that has been output or is to be output.

[0099] In some embodiments, the processor 12 may be comprised of an integrated circuit, such as a single packaged integrated circuit or a plurality of packaged integrated circuits with the same or different functions, including one or more central processing units (CPUs), microprocessors, digital processing chips, graphics processors, and a combination of various control chips. The processor 12 is the control core (Control Unit) of the electronic device 1, connecting the various components of the entire electronic device 1 using various interfaces and circuits. It executes or runs programs or modules stored in the memory 11 (such as a real-time data display program) and accesses data stored in the memory 11 to perform various functions of the electronic device 1 and process data.

[0100] The processor 12 executes the operating system and various installed application programs of the electronic device 1. The processor 12 executes the application programs to implement the steps in the above-mentioned method for real-time data display.

[0101] Exemplarily, the computer program may be divided into one or more modules, one or more of which are stored in the memory 11 and executed by the processor 12 to complete the present application. One or more modules may be a series of computer program instruction segments capable of performing specific functions, and the instruction segments are used to describe the execution process of the computer program in the electronic device 1. For example, the computer program may be divided into a first acquisition module 201, a second acquisition module 202, a determination module 203, and a display refresh module 204.

[0102] The above-mentioned integrated unit implemented in the form of a software functional module can be stored in a computer-readable storage medium, which can be non-volatile or volatile. The above-mentioned software functional module is stored in a storage medium and includes a number of instructions for causing a computer device (which can be a personal computer, computer device, or network device, etc.) or a processor to perform part of the functions of the real-time data display method of each embodiment of the present application.

[0103] In summary, the real-time data display method, system, device, and medium disclosed herein overcome the shortcomings of existing methods by acquiring the production factors corresponding to each nuclear power production system, determining their specific locations within the production database, reading the corresponding production data, storing it in a dedicated display database, and then displaying data based on the production data in the display database. This system automates data reading and display, significantly improving the efficiency and timeliness of display. Therefore, the present invention effectively overcomes the various shortcomings of existing technologies and possesses high industrial value.

[0104] The above embodiments are merely illustrative of the principles and effects of the present invention and are not intended to limit the present invention. Anyone skilled in the art may modify or alter the above embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or alterations made by one of ordinary skill in the art without departing from the spirit and technical principles disclosed herein are intended to be covered by the claims of the present invention.

Claims

1. A method for real-time data display, characterized in that: include: Obtaining various production factors of different nuclear power production systems to be displayed; For each factor of production: Get the corresponding data type; Determining a display update frequency of the production factor according to the data type; According to the display update frequency, the production data of the production factors are obtained from the display database for display and refresh; wherein, the production data in the display database is read from the production database of the corresponding nuclear power production system according to the reading update frequency based on different production factors.

2. A method for real-time data display according to claim 1, characterized in that: The nuclear power production system includes at least one of the following systems: Digital control system, desalted water production system, test instrument system, and radioactive waste treatment plant control system.

3. A method for real-time data display according to claim 1, characterized in that: The steps of obtaining various production elements of different nuclear power production systems to be displayed include: All production factors corresponding to each nuclear power production system are retrieved from the configuration file according to the identifier of each nuclear power production system.

4. A method for real-time data display according to claim 1, characterized in that: The production data in the display database is obtained according to the following steps: Retrieve the data type and data table location corresponding to each production factor from the configuration file; Determine the corresponding reading and updating frequency according to the data type corresponding to each production factor; According to the data table location and reading and updating frequency corresponding to each production factor, the corresponding production data is read from the production database of the nuclear power production system corresponding to the production factor.

5. A method for real-time data display according to claim 4, characterized in that: According to the data table location and reading and updating frequency corresponding to each production factor, the steps of reading corresponding production data from the production database of the nuclear power production system corresponding to the production factor include: Determine the production database of the nuclear power production system corresponding to each production factor; Determining the data reading location corresponding to the production factor according to the production database and the data table location; Generate a data reading instruction corresponding to each production factor according to the data type and the data reading position; The data reading instruction is executed according to the read update frequency to read the production data.

6. A method for real-time data display according to claim 1, characterized in that: The step of obtaining the production data of the production factor from the display database for display and refreshing according to the display update frequency includes: Reading the production data of the production factor from the display database; Displaying the production data according to the data type; The displayed production data is refreshed according to the display update frequency.

7. A method for real-time data display according to claim 6, characterized in that: According to the data type, the step of obtaining the production data of the production factor from the display database for display includes: When the data type is a switch type, it is displayed according to a preset switch display format; When the data type is a numeric type, it is displayed according to the preset precision; When the data type is character type, it is displayed according to a preset font.

8. A real-time data display system, characterized in that: include: A first acquisition module is used to acquire various production factors of different nuclear power production systems to be displayed; The second acquisition module is used to obtain the corresponding data type for each production factor; a determination module, configured to determine, for each production factor, a display update frequency of the production factor according to the data type; The display refresh module is used to obtain the production data of the production factors from the display database for display and refresh according to the display update frequency; wherein the production data in the display database is read from the production database of the corresponding nuclear power production system according to the reading update frequency based on different production factors.

9. An electronic device comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein: When the processor executes the computer program, the steps of the real-time data display method according to any one of claims 1 to 7 are implemented.

10. A storage medium storing a computer program, characterized in that: When the computer program is executed by a processor, the steps of the real-time data display method according to any one of claims 1 to 7 are implemented.

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