Control method, system, device, medium and product of air conditioning system

By acquiring indoor unit environmental data from the wired controller in the air conditioning system and updating the configuration, the problem of unreliable environmental data interaction is solved, achieving flexibility and consistency in technical means. This also addresses the issues of flexibility and consistency in the source of environmental parameters in the air conditioning system, enhancing the adaptability and intelligence of the air conditioning system.

CN122408196APending Publication Date: 2026-07-17QINGDAO HAIER AIR CONDITIONER GENERAL CORP LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
QINGDAO HAIER AIR CONDITIONER GENERAL CORP LTD
Filing Date
2026-04-24
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

In existing air conditioning systems, the sources of environmental parameters are difficult to adjust flexibly according to usage requirements, resulting in insufficient adaptability of the indoor unit to the environmental conditions. Furthermore, the interaction of environmental data between the wired controller and the indoor unit lacks flexibility and consistency, affecting user experience and control reliability.

Method used

The system obtains the current environmental data source information of the indoor unit through the wired controller in the air conditioning system, determines the target data source based on the user configuration, and sends a configuration modification command when there is inconsistency, so as to update the data source of the indoor unit, thereby achieving flexibility and consistency of environmental data source.

Benefits of technology

This enables flexibility and consistency in environmental data interaction within the air conditioning system, improving its intelligence, adaptability, and ability to meet diverse usage needs.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application belongs to the field of smart home, specifically relating to a control method, system, device, medium, and product for an air conditioning system. The method includes: an indoor unit in the air conditioning system sending first data source information to a wired controller, the first data source information representing the source of the environmental data currently used by the indoor unit; the wired controller determining second data source information for the air conditioning system, the second data source information indicating the source of the environmental data for the air conditioning system determined based on user configuration; and, in the event of inconsistency between the first and second data source information, sending a configuration modification command to the indoor unit, the indoor unit updating the first data source information according to the second data source information. This method enables the air conditioning system to maintain consistency in the source of environmental data under different usage scenarios, reduces the risk of wired controller display conflicts and indoor unit functional mismatch caused by fixed source logic, and achieves more flexible environmental data synchronization.
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Description

Technical Field

[0001] This application belongs to the field of smart home technology, specifically relating to a control method, system, device, medium, and product for an air conditioning system. Background Technology

[0002] In smart home air conditioning systems, the wired controller and the indoor unit typically communicate control commands and various environmental parameters through a defined communication protocol.

[0003] However, existing interaction methods mostly use preset data source logic, and the source of environmental parameters is difficult to adjust flexibly according to usage needs, resulting in insufficient adaptability of the internal machine to the judgment of environmental status.

[0004] Therefore, improving the flexibility and consistency of environmental parameter information exchange in air conditioner wired communication scenarios has become a technical problem that needs to be solved. Summary of the Invention

[0005] This application provides a control method, system, equipment, medium, and product for an air conditioning system, which solves the problem that the sources of environmental parameters in existing air conditioning systems are difficult to adjust flexibly according to usage requirements, resulting in insufficient adaptability of the indoor unit to the environmental conditions.

[0006] In a first aspect, embodiments of this application provide a control method for an air conditioning system, applied to a wired controller in the air conditioning system, the method comprising:

[0007] Obtain first data source information sent by the indoor unit in the air conditioning system. The first data source information is used to characterize the source of the environmental data currently used by the indoor unit, and the source includes the indoor unit or the wired controller.

[0008] Determine the second data source information for the air conditioning system, which is used to indicate the source of the environmental data for the air conditioning system determined based on user configuration;

[0009] If the first data source information and the second data source information are inconsistent, a configuration modification command is sent to the internal unit. The configuration modification command is used to instruct the internal unit to update the first data source information to the second data source information.

[0010] In one possible embodiment, determining the second data source information for the air conditioning system includes:

[0011] Determine if there is a source of user-configured environment data;

[0012] If there is a source for the user-configured environment data, the source of the user-configured environment data will be identified as the second data source information;

[0013] In the absence of a user-configured source for environment data, the default source of the pre-stored environment data is determined as the second data source information.

[0014] In one possible embodiment, the environmental data includes: a first environmental parameter, and the method further includes:

[0015] If the second data source information indicates that the source of the first environmental parameter is the wired controller, the collected first environmental parameter will be sent to the indoor unit.

[0016] The indoor unit receives a first adjustable function, wherein the first adjustable function is used to indicate the adjustable function of the air conditioning system determined by the indoor unit based on a first environmental parameter;

[0017] The adjustment function controls corresponding to the first adjustable function are displayed on the screen of the wired controller.

[0018] In one possible embodiment, sending the collected first environmental parameters to the internal unit includes:

[0019] Determine the change in the first environmental parameter within a preset time period;

[0020] Based on the parameter change and the current parameter synchronization period, determine the target parameter synchronization period corresponding to the first environmental parameter;

[0021] According to the target parameter synchronization cycle, the first environmental parameter is sent to the internal unit;

[0022] The first adjustable function is used to indicate the adjustable function of the air conditioning system determined by the indoor unit according to the synchronization cycle of the first environmental parameter and the target parameter.

[0023] In one possible embodiment, the target parameter synchronization period includes: a first parameter synchronization period and a second parameter synchronization period, wherein the first parameter synchronization period is greater than the second parameter synchronization period;

[0024] Based on the parameter changes, determine the target parameter synchronization period corresponding to the first environmental parameter, including:

[0025] If the parameter change is less than or equal to the preset change threshold, then the synchronization period of the first parameter is determined as the synchronization period of the target parameter.

[0026] If the parameter change is greater than the preset change threshold, then the second parameter synchronization period is determined as the target parameter synchronization period.

[0027] In one possible embodiment, the environmental data includes: a second environmental parameter, and the method further includes:

[0028] When the second data source information indicates that the source of the second environmental parameter is the indoor unit, the second environmental parameter sent by the indoor unit is received, and the parameter information corresponding to the second environmental parameter is displayed on the display screen of the wired controller.

[0029] Secondly, embodiments of this application provide a control method for an air conditioning system, applied to the indoor unit of the air conditioning system, the method comprising:

[0030] Send first data source information to the wired controller in the air conditioning system. The first data source information is used to characterize the source of the environmental data currently used by the indoor unit. The source includes the indoor unit or the wired controller.

[0031] Receive configuration modification instructions sent by the wired controller. The configuration modification instructions include second data source information, which is used to indicate the source of environmental data of the air conditioning system determined based on user configuration.

[0032] Update the first data source information based on the second data source information.

[0033] In one possible embodiment, the environmental data includes: a first environmental parameter, and the method further includes:

[0034] If the second data source information indicates that the source of the first environmental parameter is the wire controller, the first environmental parameter sent by the wire controller is received.

[0035] Based on the first environmental parameter, the adjustable function of the air conditioning system is determined to be the first adjustable function;

[0036] The first adjustable function is sent to the wired controller, which is used to instruct the wired controller to display the adjustment function control corresponding to the first adjustable function on the display screen.

[0037] In one possible embodiment, the environmental data includes: a second environmental parameter, and the method further includes:

[0038] When the second data source information indicates that the source of the second environmental parameter is the indoor unit, the collected second environmental parameter is sent to the wired controller. The second environmental parameter is used to instruct the wired controller to display the parameter information corresponding to the second environmental parameter on the display screen.

[0039] Thirdly, embodiments of this application provide a control device for an air conditioning system, applied to a wired controller in an air conditioning system, the device comprising:

[0040] The acquisition module is used to acquire the first data source information sent by the indoor unit in the air conditioning system. The first data source information is used to characterize the source of the environmental data currently used by the indoor unit. The source includes the indoor unit or the wired controller.

[0041] The determination module is used to determine the second data source information of the air conditioning system, which indicates the source of the environmental data of the air conditioning system determined based on user configuration.

[0042] The sending module is used to send a configuration modification command to the internal unit when the first data source information and the second data source information are inconsistent. The configuration modification command is used to instruct the internal unit to update the first data source information to the second data source information.

[0043] In one possible embodiment, the determining module is further configured to determine whether there is a source of user-configured environmental data;

[0044] The determination module is specifically used to determine the source of the user-configured environment data as the second data source information when there is a source of user-configured environment data.

[0045] The determination module is specifically used to determine the default source of pre-stored environmental data as the second data source information when there is no user-configured source of environmental data.

[0046] In one possible embodiment, the device further includes: a display module;

[0047] The sending module is also used to send the collected first environmental parameter to the indoor unit when the second data source information indicates that the source of the first environmental parameter is the wired controller;

[0048] The acquisition module is also used to receive a first adjustable function sent by the indoor unit, wherein the first adjustable function is used to indicate the adjustable function of the air conditioning system determined by the indoor unit according to the first environmental parameter;

[0049] The display module is used to display the adjustment function controls corresponding to the first adjustable function on the display screen of the wired controller.

[0050] In one possible embodiment, the determining module is further configured to determine the amount of parameter change of the first environmental parameter within a preset time period;

[0051] The determination module is also used to determine the target parameter synchronization period corresponding to the first environmental parameter based on the parameter change and the current parameter synchronization period;

[0052] The sending module is also used to send the first environmental parameters to the internal unit according to the target parameter synchronization period;

[0053] The first adjustable function is used to indicate the adjustable function of the air conditioning system determined by the indoor unit according to the synchronization cycle of the first environmental parameter and the target parameter.

[0054] In one possible embodiment, the target parameter synchronization period includes: a first parameter synchronization period and a second parameter synchronization period, wherein the first parameter synchronization period is greater than the second parameter synchronization period;

[0055] The determination module is also used to determine the first parameter synchronization period as the target parameter synchronization period when the parameter change is less than or equal to a preset change threshold.

[0056] The determination module is also used to determine the second parameter synchronization period as the target parameter synchronization period when the parameter change is greater than the preset change threshold.

[0057] In one possible embodiment, the environmental data includes: a second environmental parameter; the acquisition module is further configured to receive the second environmental parameter sent by the internal unit when the second data source information indicates that the source of the second environmental parameter is the internal unit.

[0058] The display module is also used to display the parameter information corresponding to the second environmental parameter on the display screen of the wired controller.

[0059] Fourthly, embodiments of this application provide a control device for an air conditioning system, applied to the indoor unit of the air conditioning system, the device comprising:

[0060] The sending module is used to send first data source information to the wired controller in the air conditioning system. The first data source information is used to characterize the source of the environmental data currently used by the indoor unit, and the source includes the indoor unit or the wired controller.

[0061] The acquisition module is used to receive configuration modification instructions sent by the wired controller. The configuration modification instructions include second data source information, which is used to indicate the source of environmental data of the air conditioning system determined based on user configuration.

[0062] The update module is used to update the first data source information based on the second data source information.

[0063] In one possible embodiment, the environmental data includes: a first environmental parameter, and the device further includes: a determination module;

[0064] The acquisition module is also used to receive the first environmental parameter sent by the wire controller when the second data source information indicates that the source of the first environmental parameter is the wire controller;

[0065] The determining module is used to determine the adjustable function of the air conditioning system as the first adjustable function based on the first environmental parameters;

[0066] The sending module is also used to send the first adjustable function to the wired controller, and the first adjustable function is used to instruct the wired controller to display the adjustment function control corresponding to the first adjustable function on the display screen.

[0067] In one possible embodiment, the environmental data includes: a second environmental parameter. The sending module is further configured to send the collected second environmental parameter to the wired controller when the second data source information indicates that the source of the second environmental parameter is the indoor unit. The second environmental parameter is used to instruct the wired controller to display the parameter information corresponding to the second environmental parameter on the display screen.

[0068] Fifthly, embodiments of this application provide an air conditioning system, which includes: an indoor unit and a wired controller, wherein the wired controller is used to execute the control method of the air conditioning system provided by the first aspect and / or various possible embodiments of the first aspect, and the indoor unit is used to execute the control method of the air conditioning system provided by the second aspect and / or various possible embodiments of the second aspect.

[0069] Sixthly, embodiments of this application provide an electronic device, including: a memory and a processor;

[0070] The memory stores the instructions that the computer executes;

[0071] The processor executes computer execution instructions stored in memory, causing the processor to perform the air conditioning system control method provided by the first aspect and / or various possible embodiments of the first aspect, the second aspect and / or various possible embodiments of the second aspect.

[0072] In a seventh aspect, embodiments of this application provide a computer-readable storage medium storing computer-executable instructions, which, when executed by a processor, are used to implement the control method for an air conditioning system provided by the first aspect and / or various possible implementations of the first aspect, the second aspect and / or various possible implementations of the second aspect.

[0073] Eighthly, embodiments of this application provide a computer program product, including a computer program that, when executed by a processor, implements the control method for an air conditioning system provided by the first aspect and / or various possible implementations of the first aspect, the second aspect and / or various possible implementations of the second aspect.

[0074] The air conditioning system control method provided in this application obtains the current environmental data source information sent by the indoor unit of the air conditioner, determines the target source of the air conditioning system environmental data based on the user configuration, and sends a configuration modification command when the two are inconsistent. This enables the environmental data source currently used by the indoor unit to be consistent with the user configuration, thereby improving the flexibility and consistency of environmental data interaction and enhancing the adaptability of the air conditioning system to different usage needs. Attached Figure Description

[0075] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.

[0076] Figure 1 Schematic diagram of the interaction flow of the control method for the air conditioning system provided in the embodiments of this application Figure 1 ;

[0077] Figure 2 Schematic diagram of the interaction flow of the control method for the air conditioning system provided in the embodiments of this application Figure 2 ;

[0078] Figure 3 Schematic diagram of the structure of the control device for the air conditioning system provided in the embodiments of this application Figure 1 ;

[0079] Figure 4 Schematic diagram of the structure of the control device for the air conditioning system provided in the embodiments of this application Figure 2 ;

[0080] Figure 5 This is a schematic diagram of the structure of an electronic device provided in an embodiment of this application.

[0081] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation

[0082] To make the objectives, technical solutions, and advantages of this application clearer, the technical solutions of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0083] The terms "first," "second," "third," "fourth," etc. (if present) in the specification, claims, and accompanying drawings of this invention are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that embodiments of the invention described herein can be implemented in orders other than those illustrated or described herein.

[0084] In this application, the terms "exemplary" or "for example" are used to indicate examples, illustrations, or descriptions. Any embodiment or design described as "exemplary" or "for example" in this application should not be construed as being more preferred or advantageous than other embodiments or designs. Specifically, the use of terms such as "exemplary" or "for example" is intended to present the relevant concepts in a specific manner.

[0085] As users increasingly demand higher levels of living comfort and precision in environmental control, air conditioning systems not only need to achieve basic start-stop control, but also require more granular linkage processing based on environmental data, enabling the wired controller and indoor unit to work collaboratively under the same data source logic.

[0086] In existing air conditioning systems, the interaction of environmental data between the wired controller and the indoor unit is usually completed using preset logic. That is, the source of environmental data is determined in the system design stage, and the wired controller and the indoor unit communicate bidirectionally according to a predetermined protocol. The wired controller is responsible for displaying and sending control intentions, while the indoor unit is responsible for collecting environmental data and feeding back the operating status.

[0087] In actual operation, the indoor unit often defaults to using the environmental data collected by its own sensors as the basis for control, while the wired controller, when it has the ability to collect environmental data, can also report its own data to the indoor unit.

[0088] However, due to the fixed source logic, the system usually cannot flexibly decide which side should provide the environmental data based on the user's current needs or the installation environment, nor can it allow the indoor unit to actively identify and switch the currently used data source during operation.

[0089] When users want a certain environmental parameter to be provided by the wired controller while another parameter is still provided by the indoor unit, existing solutions often cannot meet this requirement directly and can only rely on fixed configurations, resulting in a lack of flexibility in the control logic. On the other hand, fixed source logic can also easily cause display inconsistency issues. For example, the environmental parameters displayed by the wired controller may not be consistent with the parameters used by the indoor unit to make decisions, making it impossible for users to intuitively judge the current system status, thereby reducing the reliability of air conditioning control and the user experience.

[0090] Therefore, existing technologies have significant shortcomings in terms of configurability of environmental data sources, consistency of data synchronization, and functional adaptability, making it difficult to meet the needs of flexible control and refined management in smart home scenarios.

[0091] In view of this, how to enable the environmental data source used by the indoor unit to be updated according to the user configuration in the case of air conditioner wired communication, and to complete the configuration linkage in a timely manner when the source is inconsistent, is an urgent technical problem to be solved.

[0092] To address the aforementioned issues, this application provides a control method for an air conditioning system. Through a data source coordination mechanism between the wired controller and the indoor unit, the system first obtains the environmental data source currently used by the indoor unit, then determines another data source information corresponding to the user configuration. If the two are inconsistent, the wired controller sends a configuration modification command to the indoor unit, causing the indoor unit to update its current source to match the user configuration. This control logic, centered on data source comparison and configuration updates, enables the air conditioning system to maintain consistency in environmental data sources under different usage scenarios, allowing the indoor unit to judge environmental conditions and execute functions according to user expectations, thus improving the intelligence of the air conditioning system.

[0093] The technical solution of this application and how the technical solution of this application solves the above-mentioned technical problems are described in detail below with specific embodiments. These specific embodiments can be combined with each other, and the same or similar concepts or processes may not be described again in some embodiments. The embodiments of this application will now be described with reference to the accompanying drawings.

[0094] Figure 1 Schematic diagram of the interaction flow of the control method for the air conditioning system provided in the embodiments of this application Figure 1 ,like Figure 1 As shown, the control method for the air conditioning system provided in this embodiment includes the following steps:

[0095] S101. The indoor unit in the air conditioning system sends the first data source information to the wired controller in the air conditioning system.

[0096] In this embodiment, the wired controller can be a control terminal installed on an indoor wall, control panel, or other location convenient for user operation. The wired controller may include a display screen, a communication module, and a display control module, used to receive user input, display operating status, and communicate with the indoor unit. The indoor unit can be the main control board, control host, or control module for executing operating logic, used to carry control logic such as determining the source of environmental data, data storage, periodic reporting, and subsequent update processing. The indoor unit is the main body of the air conditioning system that actually performs functions such as cooling, heating, dehumidification, or air supply. It integrates control circuitry and is equipped with at least one environmental acquisition component, including a temperature sensor and a humidity sensor. In this embodiment, the indoor unit can be integrated inside the indoor unit or communicated with the indoor unit to control its operation.

[0097] The first data source information is used to characterize the source of the environmental data currently used by the indoor unit. This source includes the indoor unit or the wired controller, that is, whether the indoor unit is actually using data collected locally by the indoor unit, or data collected by the wired controller or forwarded and reported by the wired controller during the current control process.

[0098] Here, environmental data may include indoor temperature data, indoor humidity data, or other indoor status data related to air conditioning operation and control, such as fine particulate matter concentration data (PM2.5), human presence detection data, etc. Concentration data, human presence detection data, indoor light intensity data, etc.

[0099] The first data source information can be represented by enumeration values, status codes, flag bits, field combinations, or message parameters. "Indoor unit" indicates that the indoor unit uses environmental data collected locally by the indoor unit, and "wired controller" indicates that the indoor unit uses environmental data provided or forwarded by the wired controller.

[0100] In one possible embodiment, when the indoor unit is powered on, switching modes, resetting the system, restoring parameters, or detecting a change in the source policy, the controller first reads the current data source configuration from the local memory, and then converts the configuration into a status code, enumeration value, bit combination, or field parameter that can be transmitted in the communication protocol to form the first data source information.

[0101] The wired controller can periodically receive status messages sent by at least one indoor unit according to a preset communication protocol. The status message carries an indoor unit device identifier field and a source identifier field. After receiving the status message, the wired controller parses the message frame header, indoor unit device identifier, device address, command word, load area and check bit, and extracts the source identifier field from the load area to obtain the first data source information of the corresponding indoor unit.

[0102] The default communication protocol here can be a serial bus protocol, a half-duplex communication protocol, or a dedicated control protocol for air conditioning equipment, such as the Home Bus System Protocol (HBS).

[0103] In another implementation, after the wired controller completes power-on initialization, after the user enters the source configuration interface, after receiving a mode switching operation, or when a preset time period arrives, it actively sends a query command to the indoor unit, requesting the indoor unit to return the currently used environmental data source. After receiving the query command, the indoor unit reads the current source status from its local control parameter area, running register, or source configuration cache, and encapsulates it into a response message to return to the wired controller. After completing the response verification, the wired controller obtains the first data source information.

[0104] In this step, the first data source information can be organized using a more refined data structure. For example, separate source fields can be configured for temperature and humidity to form temperature source information and humidity source information. The temperature source field indicates whether the indoor unit uses the indoor unit's temperature sensor or the temperature acquisition result from the wired controller when the indoor unit is currently controlling the temperature adjustment, and the humidity source field indicates whether the indoor unit uses the indoor unit's humidity sensor or the humidity acquisition result from the wired controller when the indoor unit is currently controlling dehumidification or humidity-related functions.

[0105] Accordingly, when parsing the first data source information, the wired controller can obtain not only the overall source status but also the individual source status for different environmental parameters. This allows it to accommodate users' control needs where they only need to adjust one type of environmental parameter source without changing another type of source.

[0106] Based on the above analysis, this step enables the wired controller to obtain the current real configuration status of the indoor unit, avoiding judgment errors caused by inferences based solely on local display or default logic.

[0107] S102. The wired controller in the air conditioning system determines the second data source information of the air conditioning system, which is used to indicate the source of the environmental data of the air conditioning system determined based on the user configuration.

[0108] In this embodiment of the application, the second data source information can be understood as the target source information generated by the wired controller based on user intent, scenario strategy or local configuration rules, which reflects the environmental data source configuration that the current air conditioning system should adopt.

[0109] User configuration can be a source selection set directly by the user through the wired controller's interactive interface, or it can be a parameter item set by the user during the installation and debugging phase and stored in the wired controller's local memory, or it can be a target configuration automatically selected by the system based on the user's historical preferences in a specific mode.

[0110] When determining the second data source information, the wired controller can first read the source configuration record in the local parameter storage area. This parameter storage area can be a configuration file, parameter table, register mapping area or database item in non-volatile memory. The stored content can include the overall source mode, temperature source option, humidity source option, configuration timestamp and configuration validity flag, etc.

[0111] After startup, upon entering the settings menu, or upon detecting a new user configuration action, the wired controller reads the aforementioned configuration record and parses the corresponding parameters into secondary data source information. For example, a configuration field value of "00" indicates that both temperature and humidity are sourced from the indoor unit; a value of "01" indicates that temperature is sourced from the wired controller and humidity from the indoor unit; a value of "10" indicates that temperature is sourced from the indoor unit and humidity from the wired controller; and a value of "11" indicates that both temperature and humidity are sourced from the wired controller. This encoding method allows for fine-grained source configuration management without significantly increasing communication overhead or storage space.

[0112] When the wired controller has a graphical display interface or a button menu interface, the second data source information can also be generated through real-time interaction. Specifically, the wired controller can provide a source setting page, which includes options for temperature source selection, humidity source selection, or a unified source selection. Users can set these options through buttons, knobs, touch operations, voice input, or mobile terminal linkage control. The wired controller converts the received input events into source configuration commands, writes them into the local parameter area, and forms the second data source information.

[0113] In some embodiments, the wired controller can also perform format validity checks, field integrity checks, and conflict checks on the user configuration. For example, when the system version does not support independent humidity source configuration, but the user-side configuration contains an independent humidity source field, the wired controller can map it to a unified source in compatibility mode, or indicate that the field is currently not effective; when there are abnormal values ​​in the local configuration, the wired controller can revert to the most recent valid configuration or the default configuration.

[0114] Based on the above analysis, this step enables the wired controller to form a clear and executable target source configuration based on the user's intent, no longer limited to fixed source logic, thus providing a basis for realizing the configurability and flexible switching of environmental data sources.

[0115] S103. In the case that the first data source information and the second data source information are inconsistent, the wired controller in the air conditioning system sends a configuration modification command to the indoor unit. The configuration modification command includes the second data source information.

[0116] In this embodiment of the application, after obtaining the first data source information and the second data source information, the wired controller can execute a consistency comparison process in its local processor. This comparison process can be a comparison at the overall source level, or a comparison of the temperature source field and the humidity source field item by item.

[0117] When the comparison result shows that the source status currently used by the indoor unit is consistent with the target source status corresponding to the user configuration, the wired controller can maintain the current status and use the consistent result for interface display, operation record or subsequent timed verification; when the comparison result shows that the two are inconsistent in at least one parameter item, the wired controller generates a configuration modification command and sends it to the indoor unit so that the indoor unit updates the source configuration.

[0118] The data content of the configuration modification command here includes at least the target source identifier of the environment data, i.e., the second data source information, and may also include the command sequence number, timestamp, verification information, parameter applicable scope, and control flags for whether it takes effect immediately.

[0119] Before sending a configuration modification command, the wired controller can first confirm the online status of the indoor unit or the availability of the communication link. If the indoor unit is online and communication is normal, the wired controller will immediately send the configuration modification command; if the indoor unit is temporarily offline, communication is interrupted, or the bus is abnormal, the wired controller can cache the target source configuration to be sent in the local synchronization queue and automatically resend it after communication is restored, or try to send it again in the next polling cycle.

[0120] S104. The indoor unit in the air conditioning system updates the first data source information based on the second data source information.

[0121] In one possible embodiment, the second data source information adopts a replacement configuration, that is, it directly provides a new complete source status, and the internal machine overwrites the current first data source information with this status after the verification is passed.

[0122] In another possible embodiment, the second data source information is configured in a segmented manner, for example, including only a humidity source update field, indicating that the humidity source is switched from the indoor unit to the wired controller, while the temperature source remains unchanged. This allows the humidity and temperature control functions to operate according to different data acquisition points, meeting the control requirements under different installation locations and different comfort needs.

[0123] Afterwards, the indoor unit can return a configuration success response, a configuration failure response, or a temporarily unexecutable response to the wired controller. Upon receiving a success response, the wired controller updates the source display status in its local interface to the target source status and can record a configuration synchronization success event. If the wired controller receives a failure response or does not receive a response within a preset timeout period, it can resend the configuration modification command according to the retry policy. After the number of retries reaches a threshold, a fault message will be displayed or the system will remain in a pending synchronization state.

[0124] In this way, the indoor unit configuration is updated by comparing the source data from the wired controller, transforming the actual control basis of the indoor unit from fixed logic to dynamic logic consistent with the user configuration. This approach utilizes existing communication links to complete source switching and configuration linkage, effectively preventing inconsistencies between the environmental data displayed by the wired controller and the control basis executed by the indoor unit.

[0125] The air conditioning system control method provided in this application embodiment involves the indoor unit of the air conditioning system sending first data source information to the wired controller of the air conditioning system. The first data source information is used to characterize whether the source of the environmental data currently used by the indoor unit is the indoor unit or the wired controller. The wired controller determines second data source information of the air conditioning system, which is used to indicate the source of the environmental data of the air conditioning system determined based on user configuration. If the first data source information and the second data source information are inconsistent, the wired controller sends a configuration modification command to the indoor unit. The configuration modification command includes the second data source information. The indoor unit updates the first data source information according to the second data source information. This method enables the air conditioning system to maintain the consistency of environmental data sources under different usage scenarios, reduces the risk of wired controller display conflicts and indoor unit function mismatch caused by fixed source logic, and achieves more flexible environmental data synchronization.

[0126] Figure 2 Schematic diagram of the interaction flow of the control method for the air conditioning system provided in the embodiments of this application Figure 2 This embodiment is... Figure 1 Based on the embodiments, the control method of the air conditioning system will be described in detail. For example... Figure 2 As shown, the control method for the air conditioning system provided in this embodiment includes:

[0127] S201. The indoor unit in the air conditioning system sends the first data source information to the wired controller in the air conditioning system.

[0128] Step S201 is similar to step S101 above, and will not be repeated here.

[0129] S202. The wired controller in the air conditioning system determines whether there is a source of user-configured environmental data.

[0130] The environmental data configured by the user can be stored in the local configuration area of ​​the wired controller. The local configuration area can be composed of non-volatile memory so that the configuration content can be retained after power failure.

[0131] When determining whether there is a source of user-configured environmental data, the wired controller can read configuration records such as configuration flag bits, valid bits, or configuration record check values ​​to confirm whether the corresponding configuration has been saved by the user.

[0132] S203. In the case of a source of user-configured environmental data, the wired controller in the air conditioning system shall determine the source of user-configured environmental data as the second data source information.

[0133] In this step, when the read configuration record meets the preset valid conditions, it can be determined that there is a source of user-configured environment data.

[0134] The source of environmental data configured by the user can be flexibly selected by the user based on factors such as the installation location of the indoor unit, personal comfort preferences, and control precision requirements. For example, if the user wants the air conditioner to control the temperature more closely to the comfort environment of their location, the temperature source can be set to the wired controller; if the humidity sensor is placed in the indoor unit for greater stability, the humidity source can be kept in the indoor unit; the user can also flexibly specify the data collection source for parameters such as fan speed, return air temperature, ambient noise, and human body sensing.

[0135] S204. In the absence of a user-configured source of environmental data, the wired controller in the air conditioning system will determine the default source of the pre-stored environmental data as the second data source information.

[0136] The default source of the pre-stored environmental data can be written into the factory parameter table or embedded in the control program during system initialization, so that it can be directly called when no user configuration is received.

[0137] In this step, if no valid configuration record is read, it is determined that there is no source of user configuration. For scenarios where local configuration is missing, parameters are corrupted, or it is the first time the device is installed, the wired controller can generate a second data source information according to the system default strategy to ensure that the system can complete basic control.

[0138] In one possible implementation, the default strategy can be set so that the temperature source is the wired controller and the humidity source is the indoor unit. This is because the wired controller is usually closer to the user's activity area, and the temperature display is more in line with the user's perception, while the humidity control can still utilize the original humidity sampling capability of the indoor unit to maintain the availability of the function.

[0139] S205. In the case of inconsistency between the first data source information and the second data source information, the wired controller in the air conditioning system sends a configuration modification command to the indoor unit. The configuration modification command includes the second data source information.

[0140] Step S205 is similar to step S103 above, and will not be described again here.

[0141] S206. The indoor unit in the air conditioning system updates the first data source information based on the second data source information.

[0142] Step S206 is similar to step S104 above, and will not be described again here.

[0143] S207. When the second data source information indicates that the source of the first environmental parameter is the wired controller, the wired controller in the air conditioning system sends the collected first environmental parameter to the indoor unit.

[0144] The first environmental parameter can be, for example, a temperature parameter, a humidity parameter, a temperature and humidity combination parameter, or other environmental quantities related to the operation and control of the indoor unit. The wired controller can collect the first environmental parameter through a temperature and humidity sensor installed inside the wired controller body.

[0145] When the second data source information indicates that the source of the first environmental parameter is the wired controller, the wired controller encapsulates the collected first environmental parameter into a data frame according to a preset communication protocol and sends it to the indoor unit so that the indoor unit can make an operation judgment based on the environmental parameter.

[0146] For example, sending the collected first environmental parameters to the internal unit includes:

[0147] The parameter change of the first environmental parameter within a preset time period is determined; based on the parameter change and the current parameter synchronization period, the target parameter synchronization period corresponding to the first environmental parameter is determined; the first environmental parameter is sent to the indoor unit according to the target parameter synchronization period; wherein, the first adjustable function is used to instruct the indoor unit to determine the adjustable function of the air conditioning system according to the first environmental parameter and the target parameter synchronization period.

[0148] In this embodiment, the wired controller continuously collects the first environmental parameter within a preset time period and forms a time series in order to calculate the difference between adjacent sampling times of the parameter, or to calculate the maximum fluctuation amplitude and average change amplitude within the preset time period.

[0149] The current parameter synchronization period represents the existing time interval at which the wired controller sends the environmental parameter to the internal unit, such as once per minute. The target parameter synchronization period is adjusted based on the parameter change; the synchronization period is shortened when the environmental change is significant and lengthened when the environmental change is minor. The wired controller can pre-establish a mapping relationship between parameter changes and synchronization periods in its internal memory and make corrections based on the current synchronization period, thereby generating a transmission period suitable for the current environmental conditions.

[0150] After the online controller obtains the target parameter synchronization period, it can send the first environmental parameter to the indoor unit when the target parameter synchronization period arrives, through timed interrupts, periodic task scheduling, or message queue triggering. Upon receiving this parameter, the indoor unit, in conjunction with the synchronization period information corresponding to the receiving time, judges the timeliness and trend of the parameter, and determines the adjustable functions of the air conditioning system accordingly.

[0151] By adopting this implementation method, the frequency of environmental parameter transmission can be dynamically adjusted according to environmental changes, reducing unnecessary communication overhead and improving the timeliness of the indoor unit's response to environmental changes. This makes the determination of the adjustment function more consistent with the actual indoor state, thereby improving the control stability and user experience of the air conditioning system.

[0152] In one possible implementation, the target parameter synchronization period includes: a first parameter synchronization period and a second parameter synchronization period, wherein the first parameter synchronization period is greater than the second parameter synchronization period;

[0153] Based on the parameter changes, determine the target parameter synchronization period corresponding to the first environmental parameter, including:

[0154] If the parameter change is less than or equal to the preset change threshold, then the synchronization period of the first parameter is determined as the synchronization period of the target parameter.

[0155] If the parameter change is greater than the preset change threshold, then the second parameter synchronization period is determined as the target parameter synchronization period.

[0156] In this embodiment, the parameter change is used to characterize the fluctuation range of the first environmental parameter within a preset time period, and can be determined by the wired controller based on the difference between two adjacent acquisition values, the maximum difference of multiple sampling points, or the average deviation value.

[0157] The preset change threshold is stored in the parameter table of the wired controller. Its value can be set according to the air conditioner communication bandwidth, environmental response sensitivity and control frequency requirements. For example, the preset temperature change threshold is ±0.5℃ and the preset humidity change threshold is ±5%.

[0158] The first parameter, synchronization period, is used for stable environmental scenarios, such as synchronizing once every 2 minutes. The second parameter, synchronization period, is used for scenarios with large environmental fluctuations, such as synchronizing once every 30 seconds. Both can be set at intervals of seconds or minutes, and the second parameter, synchronization period, is shorter than the first parameter, synchronization period.

[0159] In actual operation, after completing the acquisition of the first environmental parameter, the wired controller first calculates the corresponding parameter change, and then compares the parameter change with a preset change threshold. When the parameter change does not exceed the threshold, the first parameter synchronization period is determined as the current target parameter synchronization period, and the first environmental parameter is sent to the indoor unit according to this period, so that the indoor unit maintains environmental information updates at a lower communication frequency. When the parameter change exceeds the threshold, the second parameter synchronization period is used as the current target parameter synchronization period, and the first environmental parameter is sent at a higher frequency so that the indoor unit can promptly correct its judgment on the adjustable functions of the air conditioning system.

[0160] By setting the synchronization period to a combination of long and short periods and selecting it based on parameter changes, the wired controller can reduce invalid communication when the environment is stable and improve synchronization timeliness when the environment fluctuates. This allows the transmission frequency of the first environmental parameter to be adaptively adjusted according to the environmental state, thereby improving the air conditioning system's adaptability to temperature and humidity changes and its operational stability.

[0161] S208. The indoor unit of the air conditioning system determines the adjustable function of the air conditioning system as the first adjustable function based on the first environmental parameter.

[0162] In this embodiment of the application, after receiving the first environmental parameter, the indoor unit can generate a first adjustable function by combining its current operating mode, set temperature, target humidity and preset control logic. The first adjustable function is used to instruct the indoor unit to determine the adjustable function of the air conditioning system based on the first environmental parameter. The adjustable function may include adjustable dehumidification, adjustable air supply level, adjustable automatic mode or adjustable humidity setting range, etc.

[0163] After receiving the first environmental parameter sent by the wired controller, the indoor unit can extract the parameter value through the data parsing module, and combine it with the current operating mode, set range and preset threshold to identify and filter the adjustable functions that the air conditioning system can currently open, so as to obtain the first adjustable function that matches the parameter.

[0164] S209. The indoor unit in the air conditioning system sends the first adjustable function to the wired controller.

[0165] To improve interaction consistency, the first adjustable function identifier sent by the internal unit can carry function type, display name, and control status information, so that the wired controller can generate display content that matches the current first environmental parameters.

[0166] S210. The wired controller in the air conditioning system displays the adjustment function control corresponding to the first adjustable function on the display screen of the wired controller.

[0167] The first adjustable function can be one or more of the following: temperature regulation, humidity regulation, dehumidification function, or air supply control.

[0168] After receiving the first adjustable function sent by the indoor unit, the wired controller can dynamically generate the corresponding adjustment function control based on the function information and display it on the display screen. The display screen can be an LCD screen, a touch screen, or a dot matrix screen. The adjustment function control can be represented as a button, icon, slider, or menu entry.

[0169] After parsing the first adjustable function, the wired controller places the corresponding control in the visible area of ​​the current interface, and can highlight, gray out or hide the control according to the availability of the function, so that the user can intuitively identify the adjustable functions of the current air conditioning system.

[0170] In this embodiment, the air conditioning system can perform function determination based on environmental parameters provided by the wired controller and promptly transmit the determination results back to the wired controller display, avoiding inconsistencies between the displayed information and the execution logic. Therefore, users can directly initiate control using the adjustment function controls on the wired controller screen, and the indoor unit executes the corresponding function based on the same environmental parameters, thereby improving the control accuracy, interface consistency, and user experience of the air conditioning system.

[0171] S211. When the indoor unit of the air conditioning system indicates that the source of the second environmental parameter is the indoor unit, the indoor unit will send the collected second environmental parameter to the wired controller.

[0172] In this embodiment, the second environmental parameter can be temperature, humidity, air quality parameters, or other environmental parameters related to function adjustment. When the second data source information indicates that the source of the second environmental parameter is the indoor unit, it means that the second environmental parameter is acquired by the sensor module or acquisition module built into the indoor unit.

[0173] In this step, in addition to the second environmental parameters, the content sent by the indoor unit can also carry the source identifier, timestamp, and verification information so that the wired controller can determine the validity of the parameters.

[0174] S212. The wired controller in the air conditioning system displays the parameter information corresponding to the second environmental parameter on the display screen of the wired controller.

[0175] The parameter information corresponding to the second parameter information can be presented in the form of numbers, icons, or text prompts.

[0176] For example, when the second environmental parameter is humidity, the displayed content may include the humidity percentage and its corresponding unit; when the second environmental parameter is temperature, the displayed content may include the temperature value and the degree Celsius indicator. By directly displaying the second environmental parameter sent by the indoor unit on the wired controller interface, users can obtain real-time environmental information on which the air conditioning system is currently based and determine its operating status accordingly.

[0177] Based on the above method, when the second environmental parameter source is the indoor unit, the wired controller can directly receive and display the parameter, which can keep the displayed content consistent with the data source and avoid the situation where the information shown on the user interface is inconsistent with the actual control basis of the indoor unit.

[0178] The air conditioning system control method provided in this application embodiment allows the air conditioning system to directly use the user-specified environmental data source when user configuration exists, and automatically use a preset default source when no user configuration exists, thus balancing flexibility and stability. The wired controller can promptly synchronize parameters to the indoor unit when it is acting as the first environmental parameter source, enabling the indoor unit to complete function judgments based on the same environmental basis, avoiding mode misjudgment caused by inconsistent control basis. At the same time, the first adjustable function fed back by the indoor unit can directly drive the wired controller interface display, allowing the user to know the current adjustable function range of the air conditioning system in real time, improving display consistency and interaction accuracy, and reducing function mismatch and operation deviation caused by mismatched environmental sources.

[0179] Based on the above embodiments, this application also provides a control device for an air conditioning system.

[0180] Figure 3 This is a schematic diagram of the structure of the control device for the air conditioning system provided in this application, which is used in a wired controller in the air conditioning system, such as... Figure 3 As shown, this application embodiment provides a control device 300 for an air conditioning system, including:

[0181] The acquisition module 301 is used to acquire the first data source information sent by the indoor unit in the air conditioning system. The first data source information is used to characterize the source of the environmental data currently used by the indoor unit. The source includes the indoor unit or the wired controller.

[0182] The determination module 302 is used to determine the second data source information of the air conditioning system, which is used to indicate the source of the environmental data of the air conditioning system determined based on the user configuration.

[0183] The sending module 303 is used to send a configuration modification instruction to the internal unit when the first data source information and the second data source information are inconsistent. The configuration modification instruction is used to instruct the internal unit to update the first data source information to the second data source information.

[0184] Optionally, the determining module 302 is also used to determine whether there is a source of user-configured environment data;

[0185] The determination module 302 is specifically used to determine the source of the user-configured environment data as the second data source information when there is a source of user-configured environment data.

[0186] The determination module 302 is specifically used to determine the default source of the pre-stored environmental data as the second data source information when there is no source of user-configured environmental data.

[0187] Optionally, the device may also include: a display module 304;

[0188] The sending module 303 is also used to send the collected first environmental parameter to the indoor unit when the second data source information indicates that the source of the first environmental parameter is the wired controller;

[0189] The acquisition module 301 is also used to receive a first adjustable function sent by the indoor unit, wherein the first adjustable function is used to indicate the adjustable function of the air conditioning system determined by the indoor unit according to the first environmental parameter;

[0190] Display module 304 is used to display the adjustment function control corresponding to the first adjustable function on the display screen of the wired controller.

[0191] Optionally, the determining module 302 is also used to determine the amount of parameter change of the first environmental parameter within a preset time period;

[0192] The determination module 302 is also used to determine the target parameter synchronization period corresponding to the first environmental parameter based on the parameter change amount and the current parameter synchronization period;

[0193] The sending module 303 is also used to send the first environmental parameters to the internal unit according to the target parameter synchronization period;

[0194] The first adjustable function is used to indicate the adjustable function of the air conditioning system determined by the indoor unit according to the synchronization cycle of the first environmental parameter and the target parameter.

[0195] Optionally, the target parameter synchronization period includes: a first parameter synchronization period and a second parameter synchronization period, wherein the first parameter synchronization period is longer than the second parameter synchronization period;

[0196] The determining module 302 is also used to determine the first parameter synchronization period as the target parameter synchronization period when the parameter change is less than or equal to a preset change threshold.

[0197] The determining module 302 is also used to determine the second parameter synchronization period as the target parameter synchronization period when the parameter change is greater than the preset change threshold.

[0198] Optional, environmental data includes: second environmental parameters;

[0199] The acquisition module 301 is also used to receive the second environmental parameter sent by the internal unit when the second data source information indicates that the source of the second environmental parameter is the internal unit;

[0200] The display module 304 is also used to display the parameter information corresponding to the second environmental parameter on the display screen of the wired controller.

[0201] Figure 4 This is a schematic diagram of the structure of the control device for the air conditioning system provided in this application, applied to the indoor unit of the air conditioning system, such as... Figure 4As shown, this application embodiment provides a control device 400 for an air conditioning system, including:

[0202] The sending module 401 is used to send first data source information to the wired controller in the air conditioning system. The first data source information is used to characterize the source of the environmental data currently used by the indoor unit, and the source includes the indoor unit or the wired controller.

[0203] The acquisition module 402 is used to receive a configuration modification instruction sent by the wired controller. The configuration modification instruction includes second data source information, which is used to indicate the source of the environmental data of the air conditioning system determined based on the user configuration.

[0204] The update module 403 is used to update the first data source information based on the second data source information.

[0205] Optionally, the environmental data includes: a first environmental parameter, and the device further includes: a determination module 404;

[0206] The acquisition module 402 is also used to receive the first environmental parameter sent by the wire controller when the second data source information indicates that the source of the first environmental parameter is the wire controller;

[0207] The determining module 404 is used to determine the adjustable function of the air conditioning system as the first adjustable function based on the first environmental parameters;

[0208] The sending module 401 is also used to send the first adjustable function to the wired controller, the first adjustable function being used to instruct the wired controller to display the adjustment function control corresponding to the first adjustable function on the display screen.

[0209] Optionally, the environmental data includes: a second environmental parameter. The sending module 401 is further configured to send the collected second environmental parameter to the wired controller when the second data source information indicates that the source of the second environmental parameter is the indoor unit. The second environmental parameter is used to instruct the wired controller to display the parameter information corresponding to the second environmental parameter on the display screen.

[0210] The air conditioning system control device provided in this application can execute the technical solution of the air conditioning system control method provided in any of the above embodiments. Its principle and technical effect are similar, and will not be described again here.

[0211] This application also provides an electronic device.

[0212] Figure 5 A schematic diagram of the structure of the electronic device provided in this application. Figure 5 As shown, this application provides an electronic device 500, which includes: a receiver 501, a transmitter 502, a processor 503, and a memory 504.

[0213] Receiver 501 is used to receive instructions and data;

[0214] Transmitter 502 is used to send commands and data;

[0215] Memory 504 is used to store instructions executed by the computer;

[0216] The processor 503 is used to execute computer execution instructions stored in the memory 504 to implement the various steps of the air conditioning system control method in the above embodiments. For details, please refer to the relevant descriptions in the foregoing embodiments of the air conditioning system control method.

[0217] Alternatively, the memory 504 can be either standalone or integrated with the processor 503.

[0218] When the memory 504 is set up independently, the electronic device also includes a bus for connecting the memory 504 and the processor 503.

[0219] In the above embodiments, it should be understood that the processor can be a Central Processing Unit (CPU), or other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), etc. The general-purpose processor can be a microprocessor or any conventional processor. The steps of the method disclosed in this invention can be directly implemented by a hardware processor, or implemented by a combination of hardware and software modules within the processor.

[0220] The memory may include random access memory (RAM) and may also include non-volatile memory (NVM), such as at least one disk storage device.

[0221] The bus can be an Industry Standard Architecture (ISA) bus, a Peripheral Component Interconnect (PCI) bus, or an Extended Industry Standard Architecture (EISA) bus, etc. Buses can be categorized as address buses, data buses, control buses, etc. For ease of illustration, the buses shown in the accompanying drawings are not limited to a single bus or a single type of bus.

[0222] This application also provides a computer program product, including a computer program that, when executed by a processor, implements the control method of the air conditioning system provided in any of the above embodiments.

[0223] This application also provides a computer-readable storage medium storing computer-executable instructions, which, when executed by a processor, implement the control method of the air conditioning system provided in any of the above embodiments.

[0224] The aforementioned readable storage medium can be implemented by any type of volatile or non-volatile storage device or a combination thereof, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic storage, flash memory, magnetic disk, or optical disk. The readable storage medium can be any available medium accessible to a general-purpose or special-purpose computer.

[0225] An exemplary readable storage medium is coupled to a processor, enabling the processor to read information from and write information to the readable storage medium. Of course, the readable storage medium can also be a component of the processor. The processor and the readable storage medium can reside in an Application Specific Integrated Circuit (ASIC). Alternatively, the processor and the readable storage medium can exist as discrete components in the device.

[0226] The division of units is merely a logical functional division; in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be indirect coupling or communication connection through some interfaces, devices, or units, and may be electrical, mechanical, or other forms.

[0227] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.

[0228] In addition, the functional units in the various embodiments of the present invention can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit.

[0229] If a function is implemented as a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of this invention, or the part that contributes to the prior art, or a part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods of the various embodiments of this invention. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.

[0230] Those skilled in the art will understand that all or part of the steps of the above-described method embodiments can be implemented by hardware related to program instructions. The aforementioned program can be stored in a computer-readable storage medium. When executed, the program performs the steps of the above-described method embodiments; and the aforementioned storage medium includes various media capable of storing program code, such as ROM, RAM, magnetic disks, or optical disks.

[0231] Finally, it should be noted that other embodiments of the invention will readily occur to those skilled in the art upon consideration of the specification and practice of the invention disclosed herein. This invention is intended to cover any variations, uses, or adaptations of the invention that follow the general principles of the invention and include common knowledge or customary techniques in the art not disclosed herein, and is not limited to the precise structures described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The scope of the invention is limited only by the appended claims.

Claims

1. A control method for an air conditioning system, characterized in that, The method, applied to the wired controller in the air conditioning system, includes: Obtain first data source information sent by the indoor unit in the air conditioning system. The first data source information is used to characterize the source of the environmental data currently used by the indoor unit. The source includes the indoor unit or the wired controller. A second data source information for the air conditioning system is determined, wherein the second data source information is used to indicate the source of the environmental data of the air conditioning system determined based on user configuration; If the first data source information and the second data source information are inconsistent, a configuration modification instruction is sent to the internal unit. The configuration modification instruction is used to instruct the internal unit to update the first data source information to the second data source information.

2. The method according to claim 1, characterized in that, The determination of the second data source information for the air conditioning system includes: Determine if there is a source of user-configured environment data; If a source of user-configured environment data exists, the source of the user-configured environment data is determined as the second data source information; In the absence of a user-configured source for environment data, the default source of the pre-stored environment data is determined as the second data source information.

3. The method according to claim 1, characterized in that, The environmental data includes: a first environmental parameter, and the method further includes: If the second data source information indicates that the source of the first environmental parameter is the wired controller, the collected first environmental parameter is sent to the indoor unit; The indoor unit receives a first adjustable function, wherein the first adjustable function is used to indicate the adjustable function of the air conditioning system determined by the indoor unit based on the first environmental parameter. The adjustment function control corresponding to the first adjustable function is displayed on the display screen of the wired controller.

4. The method according to claim 3, characterized in that, Sending the collected first environmental parameters to the internal unit includes: Determine the amount of change in the first environmental parameter within a preset time period; Based on the parameter change and the current parameter synchronization period, determine the target parameter synchronization period corresponding to the first environmental parameter; According to the target parameter synchronization period, the first environmental parameter is sent to the internal unit; The first adjustable function is used to instruct the indoor unit to determine the adjustable function of the air conditioning system based on the synchronization cycle of the first environmental parameter and the target parameter.

5. The method according to claim 4, characterized in that, The target parameter synchronization period includes: a first parameter synchronization period and a second parameter synchronization period, wherein the first parameter synchronization period is greater than the second parameter synchronization period; The step of determining the target parameter synchronization period corresponding to the first environmental parameter based on the parameter change includes: If the change in the parameter is less than or equal to a preset change threshold, then the first parameter synchronization period is determined as the target parameter synchronization period. If the change in the parameter is greater than the preset change threshold, then the second parameter synchronization period is determined as the target parameter synchronization period.

6. The method according to any one of claims 1-5, characterized in that, The environmental data includes: a second environmental parameter, and the method further includes: When the second data source information indicates that the source of the second environmental parameter is the indoor unit, the second environmental parameter sent by the indoor unit is received, and the parameter information corresponding to the second environmental parameter is displayed on the display screen of the wired controller.

7. A control method for an air conditioning system, characterized in that, The method, applied to the indoor unit of the air conditioning system, includes: Send first data source information to the wired controller in the air conditioning system. The first data source information is used to characterize the source of the environmental data currently used by the indoor unit. The source includes the indoor unit or the wired controller. The system receives a configuration modification instruction sent by the wired controller. The configuration modification instruction includes second data source information, which is used to indicate the source of the environmental data of the air conditioning system determined based on the user configuration. Update the first data source information based on the second data source information.

8. The method according to claim 7, characterized in that, The environmental data includes: a first environmental parameter, and the method further includes: If the second data source information indicates that the source of the first environmental parameter is the wired controller, the first environmental parameter sent by the wired controller is received; Based on the first environmental parameter, the adjustable function of the air conditioning system is determined to be the first adjustable function; The first adjustable function is sent to the wired controller, and the first adjustable function is used to instruct the wired controller to display the adjustment function control corresponding to the first adjustable function on the display screen.

9. The method according to claim 7, characterized in that, The environmental data includes: a second environmental parameter, and the method further includes: When the second data source information indicates that the source of the second environmental parameter is the indoor unit, the collected second environmental parameter is sent to the wired controller. The second environmental parameter is used to instruct the wired controller to display the parameter information corresponding to the second environmental parameter on the display screen.

10. An air conditioning system, characterized in that, The system includes an indoor unit and a wired controller, the wired controller being used to execute the control method of the air conditioning system as described in any one of claims 1-6, and the indoor unit being used to execute the control method of the air conditioning system as described in any one of claims 7-9.

11. An electronic device, characterized in that, include: Memory, processor; The memory stores computer-executed instructions; The processor executes computer execution instructions stored in the memory, causing the processor to perform the control method of the air conditioning system as described in any one of claims 1-9.

12. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores computer-executable instructions, which, when executed by a processor, are used to implement the control method of the air conditioning system as described in any one of claims 1-9.

13. A computer program product, characterized in that, The system includes a computer program that, when executed by a processor, implements the control method for the air conditioning system as described in any one of claims 1-9.