A control method and device for a style programmable air conditioner

By analyzing external information through the control center to generate style control parameters, the problem of single style control in smart air conditioners is solved, enabling precise adjustment of environmental parameters and improving user experience and intelligence.

CN117906249BActive Publication Date: 2025-11-21GUANGZHOU LINKAGE ALL THINGS TECH CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202211237715.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-10
Publication Date
2025-11-21
Estimated Expiration
2042-10-10

AI Technical Summary

Technical Problem

Existing smart air conditioners have a single style control method and cannot achieve precise control of environmental parameters.

Method used

By receiving external information through the control center, analyzing and generating style control parameters corresponding to each style group, and performing style control of the programmable air conditioner based on these parameters, the accuracy of style control is improved.

Benefits of technology

The programmable air conditioner improves the convenience and efficiency of adjusting environmental parameters, enhances user experience and stickiness, and increases its level of intelligence.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN117906249B_ABST
    Figure CN117906249B_ABST
Patent Text Reader

Abstract

The application discloses a control method and device of a style programmable air conditioner, and the method comprises the following steps: a control core receives external information, wherein the external information comprises a scene parameter set of a current scene where the style programmable air conditioner is located and / or a control instruction triggered by a user; the control core generates target style control parameters corresponding to each target style group in a plurality of target style groups according to the external information; and the control core performs a style control operation on each target style group according to the style control parameters corresponding to each target style group, wherein the style control operation is used for adjusting an air outlet parameter of a style in the corresponding target style group. It can be seen that the application provides a new air conditioner style control mode, can realize accurate control of the air conditioner style, is favorable for improving the convenience and efficiency of adjusting the environmental parameters of the air conditioner, and is further favorable for improving the use experience of the user.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of intelligent air conditioning technology, and in particular to a control method and device for a style-programmable air conditioner. Background Technology

[0002] Currently, with the rapid development of smart homes, users' demand for intelligent air conditioners is increasing. The current control method for smart air conditioners is mainly to control the air outlet temperature and air outlet direction of the air conditioner after the user sets relevant parameters such as temperature, wind speed, and wind direction.

[0003] However, current air conditioners control their air style using a fixed mechanical method, also known as analog control. This method is simplistic and cannot achieve precise control of environmental parameters (such as temperature and humidity) by controlling the air conditioner's air style.

[0004] Therefore, it is particularly important to provide a new air conditioning style control method to achieve accurate control of environmental parameters. Summary of the Invention

[0005] The technical problem to be solved by the present invention is to provide a control method and device for a style-programmable air conditioner. This method analyzes received external information through a control center to obtain style control parameters corresponding to each style group (a style group includes one or more styles), and controls the corresponding style on the style-programmable air conditioner based on the style control parameters for each style group. This improves the accuracy of style control by the style-programmable air conditioner, enhances the convenience and efficiency of adjusting environmental parameters, further improves the user experience, increases user stickiness, and enhances the intelligence level of the style-programmable air conditioner.

[0006] To address the aforementioned technical problems, the first aspect of this invention discloses a control method for a style-programmable air conditioner. The style-programmable air conditioner includes multiple programmable controllable style groups, each style group including one or more styles. The method is applied to a control center that controls the style of the style-programmable air conditioner. The method includes:

[0007] The control center receives external information, including a set of scene parameters for the current scene where the style programmable air conditioner is located and / or control commands triggered by the user.

[0008] The control center generates and determines target style control parameters for each of the multiple target style groups based on the external information.

[0009] The control center performs style control operations on each target style group according to the target style control parameters corresponding to each target style group, wherein the style control operations are used to adjust the air outlet parameters of the corresponding target style group.

[0010] As an optional implementation, in the first aspect of the present invention, the control center generates and determines target style control parameters corresponding to each of the multiple target style groups based on the external information, including:

[0011] The control center inputs the external information into a pre-set first calculation model, obtains the first output result of the first calculation model, and generates target style control parameters corresponding to each of the multiple target style groups determined based on the first output result; or...

[0012] The control center inputs the external information into a pre-set second calculation model and obtains the second output result of the second calculation model. The control center also inputs the external information into a pre-set third calculation model and obtains the third output result of the third calculation model. Based on the second output result and the third output result, the control center generates and determines the target style control parameters corresponding to each of the multiple target style groups.

[0013] As an optional implementation, in a first aspect of the invention, the control center generates and determines target style control parameters corresponding to each of the plurality of target style groups based on the second output result and the third output result, including:

[0014] The control center performs a fusion operation on the second output result and the third output result to obtain a fused output result, and generates target style control parameters corresponding to each of the multiple target style groups determined based on the fused output result; or...

[0015] The control center selects one of the second and third output results as the baseline output result, and updates the baseline output result using the remaining output results from the second and third output results excluding the baseline output result, to obtain the updated output result. Based on the updated output result, it generates target style control parameters corresponding to each of the multiple target style groups; or,

[0016] The control center determines the degree of difference between the second output result and the third output result, and generates target style control parameters corresponding to each of the multiple target style groups based on the degree of difference, the second output result, and the third output result.

[0017] As an optional implementation, in a first aspect of the invention, the control center selects one of the second output result and the third output result as a reference output result, including:

[0018] The control center calculates the first matching degree between the second calculation model and the current scene, and the second matching degree between the third calculation model and the current scene;

[0019] The control center selects the highest matching degree from the first matching degree and the second matching degree, and determines the output result of the calculation model corresponding to the highest matching degree as the benchmark output result.

[0020] As an optional implementation, in the first aspect of the present invention, the set of scene parameters for the current scene includes environmental information of the current scene and / or object information of a first target object to which the air conditioning control is directed in the current scene and / or object information of a second target object in the current scene whose correlation with the air conditioning control is greater than or equal to a preset correlation threshold.

[0021] The environmental information of the current scene includes at least one of the following: temperature, humidity, wind speed, wind shape, and air quality index; the object information of the first target object includes at least one of the following: attributes of the first target object, quantity of the first target object, motion parameters of the first target object, position change parameters of the first target object, orientation change parameters of the first target object, and physiological state parameters of the first target object; the object information of the second target object includes the layout position of the second target object, the current state of the second target object, and the duration of the second target object being in the current state.

[0022] The target style control parameters corresponding to each target style group include one or more combinations of the following for each style in each target style group: main air outlet direction, air outlet speed, air outlet area, air outlet angle in the corresponding main air outlet direction, air outlet temperature, air outlet volume, air outlet humidity, and air outlet shape.

[0023] As an optional implementation, in the first aspect of the invention, before the control center generates and determines the target style control parameters corresponding to each of the plurality of target style groups based on the external information, the method further includes:

[0024] The control center determines multiple target style groups from all the style groups;

[0025] The control center determines multiple target style groups from all the style groups, including:

[0026] When the external information includes the scene parameter set of the current scene and the scene parameter set of the current scene includes the object information of the first target object, the control center determines the air conditioning control requirements of the first target object based on the object information of the first target object.

[0027] The control center calculates the control matching degree between each style group and the air conditioning control requirements to obtain the control matching degree corresponding to each style group;

[0028] The control center selects multiple target style groups from all the style groups whose corresponding adjustment matching degree is greater than or equal to a preset matching degree threshold.

[0029] As an optional implementation, in a first aspect of the present invention, the control center determines the air conditioning control requirements of the first target object based on the object information of the first target object, including:

[0030] The control center groups the object information of the first target object according to the air conditioning control demand category to obtain multiple sub-object information groups. The sub-object information in the same sub-object information group corresponds to the same air conditioning control demand category.

[0031] The control center determines the sub-air conditioning control requirements corresponding to each sub-object information group based on the sub-object information included in each sub-object information group;

[0032] The control center determines the air conditioning control requirements of the first target object based on all the sub-air conditioning control requirements.

[0033] A second aspect of the present invention discloses a control device for a style-programmable air conditioner, the style-programmable air conditioner comprising a plurality of programmable controllable style groups, each style group comprising one or more styles, the device being applied in a control center for style control of the style-programmable air conditioner, the device comprising:

[0034] A receiving module is used to receive external information, including a set of scene parameters for the current scene where the style programmable air conditioner is located and / or control commands triggered by the user.

[0035] The generation module is used to generate target style control parameters corresponding to each of the multiple target style groups determined based on the external information.

[0036] The execution module is used to perform style control operations on each target style group according to the target style control parameters corresponding to each target style group, wherein the style control operations are used to adjust the air outlet parameters of the corresponding target style group.

[0037] As an optional implementation, in a second aspect of the present invention, the method by which the generation module generates and determines the target style control parameters corresponding to each of the multiple target style groups based on the external information specifically includes:

[0038] The external information is input into a pre-defined first computational model, and the first output result of the first computational model is obtained. Based on the first output result, target style control parameters are generated for each of the multiple target style groups determined; or...

[0039] The external information is input into a pre-set second calculation model, and a second output result of the second calculation model is obtained. The external information is input into a pre-set third calculation model, and a third output result of the third calculation model is obtained. Target style control parameters are generated and determined for each of the multiple target style groups based on the second output result and the third output result.

[0040] As an optional implementation, in a second aspect of the present invention, the method by which the generation module generates and determines the target style control parameters corresponding to each of the plurality of target style groups based on the second output result and the third output result specifically includes:

[0041] Perform a fusion operation on the second output result and the third output result to obtain a fused output result, and generate target style control parameters corresponding to each of the multiple target style groups determined based on the fused output result; or,

[0042] Select one of the second and third output results as the baseline output result, and update the baseline output result using the remaining output results from the second and third output results excluding the baseline output result to obtain the updated output result. Then, generate target style control parameters corresponding to each of the multiple target style groups determined based on the updated output result; or,

[0043] The difference between the second output result and the third output result is determined, and target style control parameters corresponding to each of the multiple target style groups are generated based on the difference, the second output result, and the third output result.

[0044] As an optional implementation, in a second aspect of the present invention, the method by which the generation module selects one of the output results from the second output result and the third output result as the baseline output result specifically includes:

[0045] Calculate the first matching degree between the second calculation model and the current scene, and the second matching degree between the third calculation model and the current scene;

[0046] The highest matching degree is selected from the first matching degree and the second matching degree, and the output result of the calculation model corresponding to the highest matching degree is determined as the benchmark output result.

[0047] As an optional implementation, in the second aspect of the present invention, the set of scene parameters for the current scene includes environmental information of the current scene and / or object information of the first target object to which the air conditioning control is directed in the current scene and / or object information of the second target object in the current scene whose correlation with the air conditioning control is greater than or equal to a preset correlation threshold.

[0048] The environmental information of the current scene includes at least one of the following: temperature, humidity, wind speed, wind shape, and air quality index; the object information of the first target object includes at least one of the following: attributes of the first target object, quantity of the first target object, motion parameters of the first target object, position change parameters of the first target object, orientation change parameters of the first target object, and physiological state parameters of the first target object; the object information of the second target object includes the layout position of the second target object, the current state of the second target object, and the duration of the second target object being in the current state.

[0049] The target style control parameters corresponding to each target style group include one or more combinations of the following for each style in each target style group: main air outlet direction, air outlet speed, air outlet area, air outlet angle in the corresponding main air outlet direction, air outlet temperature, air outlet volume, air outlet humidity, and air outlet shape.

[0050] As an optional implementation, in a second aspect of the invention, the apparatus further includes:

[0051] The determining module is used to determine multiple target style groups from all the style groups before the generation module generates and determines the target style control parameters corresponding to each of the multiple target style groups based on the external information.

[0052] The determining module includes:

[0053] The determination submodule is used to determine the air conditioning control requirements of the first target object based on the object information of the first target object before the generation module generates and determines the target style control parameters corresponding to each of the multiple target style groups based on the external information. When the external information includes the scene parameter set of the current scene and the scene parameter set of the current scene includes the object information of the first target object, the determination submodule is used to determine the air conditioning control requirements of the first target object based on the object information of the first target object.

[0054] The calculation submodule is used to calculate the control matching degree between each style group and the air conditioning control requirement, so as to obtain the control matching degree corresponding to each style group;

[0055] The selection submodule is used to select multiple target style groups from all the style groups whose corresponding control matching degree is greater than or equal to a preset matching degree threshold.

[0056] As an optional implementation, in a second aspect of the present invention, the method by which the determining submodule determines the air conditioning control requirements of the first target object based on the object information of the first target object specifically includes:

[0057] The object information of the first target object is grouped according to the category of air conditioning control demand to obtain multiple sub-object information groups. The sub-object information in the same sub-object information group corresponds to the same category of air conditioning control demand.

[0058] The sub-air conditioning control requirements corresponding to each sub-object information group are determined based on the sub-object information included in each sub-object information group;

[0059] Based on all the described sub-air conditioning control requirements, the air conditioning control requirements of the first target object are determined.

[0060] A third aspect of the present invention discloses a control device for another type of programmable air conditioner, the device comprising:

[0061] Memory containing executable program code;

[0062] A processor coupled to the memory;

[0063] The processor calls the executable program code stored in the memory to execute the style programmable air conditioner control method disclosed in the first aspect of the present invention.

[0064] The fourth aspect of the present invention discloses a computer storage medium storing computer instructions, which, when invoked, are used to execute the control method for a style-programmable air conditioner disclosed in the first aspect of the present invention.

[0065] Compared with the prior art, the embodiments of the present invention have the following beneficial effects:

[0066] In this embodiment of the invention, the control center receives external information, including a set of scene parameters for the current scene where the programmable style air conditioner is located and / or control commands triggered by the user. Based on this external information, the control center generates and determines target style control parameters for each of the multiple target style groups. The control center then executes style control operations for each target style group based on these style control parameters, whereby the style control operations adjust the airflow parameters of the corresponding style within the target style group. Therefore, implementing this invention allows the control center to analyze the received external information, obtain the style control parameters for each style group (a style group includes one or more styles), and control the corresponding style on the programmable style air conditioner based on these parameters. This improves the accuracy of style control by the programmable style air conditioner, enhances the convenience and efficiency of adjusting environmental parameters, improves the user experience, increases user stickiness, and enhances the overall intelligence of the programmable style air conditioner. Attached Figure Description

[0067] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0068] Figure 1 This is a schematic diagram of a scenario in which the control method for a style programmable air conditioner disclosed in an embodiment of the present invention is applicable.

[0069] Figure 2 This is a schematic flowchart of a control method for a style-programmable air conditioner disclosed in an embodiment of the present invention;

[0070] Figure 3 This is a flowchart illustrating another style of programmable air conditioner control method disclosed in an embodiment of the present invention;

[0071] Figure 4 This is a schematic diagram of the structure of a style programmable air conditioner control device disclosed in an embodiment of the present invention;

[0072] Figure 5 This is a schematic diagram of the structure of a control device for a programmable air conditioner of another style disclosed in an embodiment of the present invention;

[0073] Figure 6 This is a schematic diagram of the structure of a control device for a programmable air conditioner of another style disclosed in an embodiment of the present invention. Detailed Implementation

[0074] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0075] The terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this invention are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, apparatus, product, or end that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or ends.

[0076] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of the invention. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0077] This invention discloses a control method and device for a style-programmable air conditioner. It analyzes received external information through a control center to obtain style control parameters corresponding to each style group (a style group includes one or more styles). Based on these parameters, it controls the corresponding style on the style-programmable air conditioner, improving the accuracy of style control and enhancing the convenience and efficiency of adjusting environmental parameters. This further improves the user experience and user stickiness of the air conditioner, and also increases its level of intelligence. Detailed descriptions follow.

[0078] To better understand the control method and apparatus for a style-programmable air conditioner described in this invention, the applicable scenarios for the control method are first described. Specifically, the applicable scenarios are those requiring adjustment of environmental parameters through air conditioning, such as a home environment. Specifically, taking a home environment as an example, this scenario can be as follows: Figure 1 As shown, Figure 1 This is a schematic diagram illustrating a scenario in which the control method for a style-programmable air conditioner disclosed in an embodiment of the present invention is applicable. For example... Figure 1 As shown in the illustration, this scenario uses the living room area of ​​a home as an example. This living room area contains a programmable air conditioner, and there are active objects (such as user A and user B) within it. Furthermore, other smart home devices, such as a smart refrigerator and smart windows, can also be placed in this living room area. The programmable air conditioner has a corresponding control hub, which can be integrated into the air conditioner or exist independently. For example, the programmable air conditioner can be integrated into a local service center or a cloud service center, or it can be integrated into other control devices in the living room area that can control the programmable air conditioner.

[0079] Specifically, the control center can independently control the corresponding style on the programmable air conditioner based on the received external information. Optionally, the external information received by the control center may include the set of scene parameters for the current scene and / or user-triggered control commands.

[0080] It should be noted that, Figure 1 The schematic diagram shown is only intended to illustrate one scenario to which the control method and device for style-programmable air conditioners are applicable, and is not intended to limit the application of the control method and device for style-programmable air conditioners to other scenarios. Figure 1 The programmable air conditioner involved in the process, Figure 1 The scene illustrations shown do not limit the shape, size, or installation location of the style programmable air conditioner; Figure 1 The existence and form of smart refrigerators, smart windows, users, and other related objects involved are not limited.

[0081] The above provides an example of one scenario in which the control method and device for style-programmable air conditioners are applicable. The control method and device for style-programmable air conditioners will be described in detail below.

[0082] Example 1

[0083] Please see Figure 2 , Figure 2 This is a flowchart illustrating a control method for a style-programmable air conditioner disclosed in an embodiment of the present invention. Figure 2The described control method for a style-programmable air conditioner is applied to a control center that controls the style of the air conditioner. The air conditioner can include multiple programmable style groups, and the control center can independently control each style group. A style group can include one or more styles. When each style group includes one style, the control center achieves independent control of each style. Optionally, the control center can be integrated into the style-programmable air conditioner or exist independently of it. For example, the air conditioner can be integrated into a local service center or cloud service center corresponding to the application scenario (such as a home scenario), or it can be integrated into other control devices that control the style-programmable air conditioner in that application scenario. This embodiment of the invention does not impose limitations. Figure 2 As shown, the control method for this type of programmable air conditioner may include the following operations:

[0084] 101. The control center receives external information.

[0085] In this embodiment of the invention, optionally, external information may include a set of scene parameters for the current scene where the programmable air conditioner is located and / or control commands triggered by the user. The set of scene parameters for the current scene where the programmable air conditioner is located may be collected by a sensing module. Specifically, the control center may receive the set of scene parameters for the current scene collected by the sensing module integrated into the programmable air conditioner, or it may receive the set of scene parameters for the current scene collected by the sensing module integrated into other control devices in the scene area capable of controlling the programmable air conditioner. Alternatively, it may be a combination of both; this embodiment of the invention does not impose limitations.

[0086] 102. The control center generates and determines the target style control parameters for each of the multiple target style groups based on external information.

[0087] Among them, multiple target style groups are the style groups that need to be controlled at present, which are determined from all the pre-divided style groups.

[0088] Optionally, the set of scene parameters for the current scene may include environmental information of the current scene and / or object information of the first target object targeted by the air conditioning control in the current scene and / or object information of the second target object in the current scene whose correlation with the air conditioning control is greater than or equal to a preset correlation threshold. Specifically, the first target object targeted by the air conditioning control may include objects that require air conditioning. Further, objects requiring air conditioning may be subdivided into static and dynamic objects according to preset classification conditions, or into human and non-human objects, or into living and non-living objects. The second target object whose correlation with the air conditioning control is greater than or equal to a preset correlation threshold may specifically include objects that affect the environmental parameters required to be controlled by the programmable air conditioning system, such as windows, humidifiers, heaters, fans, etc., which are not limited in this embodiment of the invention.

[0089] Further optionally, the environmental information of the current scene may include at least one of the following: temperature, humidity, wind speed, wind shape, and air quality index of the current scene; and even further optionally, the environmental information of the current scene may also include at least one of the following: outdoor environmental information of the current scene and the difference between indoor and outdoor environmental information of the current scene.

[0090] Optionally, the object information of the first target object may include at least one of the following: the attributes of the first target object, the quantity of the first target object, the motion parameters of the first target object, the position change parameters of the first target object, the direction change parameters of the first target object, the current health status of the first target object, and the physiological state parameters of the first target object. Furthermore, the attributes of the first target object may include at least one of the following: the gender of the first target object, the type of the first target object (e.g., human, animal, plant, etc.), and the age of the first target object. The motion parameters of the first target object may include at least one of the following: the dynamic / static state of the first target object (e.g., moving, slow movement, still, very still, etc.), the action the first target object is currently performing (e.g., exercising, walking, eating, reading, sleeping, etc.), the direction of movement, the speed of movement, and the position of movement. The physiological state parameters of the first target object may include at least one of the following: the sweating state of the first target object, the heart rate state of the first target object, and the body surface temperature of the first target object.

[0091] Optionally, the object information of the second target object may include at least one of the following: the type of the second target object, the quantity of the second target object, the layout position of the second target object, the current state of the second target object, and the duration of the second target object being in the current state. Further optional, the type of the second target object may include at least one of the following: door, window, etc., and the layout position of the second target object may include the position of at least one of the following (door, window, etc.) in the current scene; this embodiment of the invention does not impose any limitations.

[0092] Further optionally, the target style control parameters corresponding to each target style group may include one or more combinations of the following: main air outlet direction, air outlet speed, air outlet area, air outlet angle in the corresponding main air outlet direction, air outlet temperature, air outlet volume, air outlet humidity, and air outlet shape for each style in each target style group.

[0093] As can be seen, the embodiments of the present invention can obtain diverse target style control parameters by receiving diverse external information through the control center and analyzing this diverse external information. Then, the control operation corresponding to the style programmable air conditioner can be executed according to the diverse target style control parameters, which is beneficial to the accuracy and convenience of programmable style control.

[0094] 103. The control center performs style control operations on each target style group according to the target style control parameters corresponding to each target style group.

[0095] In this embodiment of the invention, the target style control parameters are used to determine the style control operation of the corresponding target style group, and the style control operation is used to adjust the air outlet parameters of the style in the corresponding target style group. Optionally, the style control operation in each target style group may include one or more combinations of temperature control operation, humidity control operation, wind direction control operation, air volume control operation, and wind speed control operation. The air outlet parameters of the style in each target style group may include one or more combinations of the main air outlet direction, air outlet velocity, air outlet area, air outlet angle in the corresponding main air outlet direction, air outlet temperature, air outlet air volume, air outlet humidity, and air outlet shape of the style in the target style group. This embodiment of the invention does not limit these parameters.

[0096] It should be noted that, for any target style group, the control center can achieve unified control of all styles in the target style group. This achieves both independent control between different style groups and unified control of styles within the style group, which is beneficial to improving the control efficiency of styles within the style group. Alternatively, it can also achieve independent control of each style in the target style group, which is beneficial to improving the control flexibility of styles within the style group. The embodiments of the present invention do not limit this.

[0097] As can be seen, the control method for the programmable air conditioner described in the embodiments of the present invention can analyze the received external information through the control center to obtain the style control parameters corresponding to each style group (a style group includes one or more styles), and realize the control of the corresponding style on the programmable air conditioner according to the style control parameters corresponding to each style group. This improves the accuracy of style control of the programmable air conditioner, facilitates the adjustment of environmental parameters and improves the user experience of the programmable air conditioner, further enhances user stickiness, and improves the intelligence level of the programmable air conditioner.

[0098] In an optional embodiment, the control center described above performs style control operations on each target style group according to the target style control parameters corresponding to each target style group, and may also include the following operations:

[0099] When there is at least one target information in the external information that meets the preset conditions, the control center determines the type of all target information; the types of all target information include interference information type and / or auxiliary information type;

[0100] The control center classifies all target information according to its type to obtain a classification result. The classification result includes a first type of information and a second type of information. The first type of information is empty or all the information types included in the first type of information are interference information types. The second type of information is empty or all the information types included in the second type of information are auxiliary information types. The first type of information and the second type of information are not empty at the same time.

[0101] The control center generates style adjustment parameters corresponding to each target style group based on the classification result; when the first type of information included in the classification result is not empty, the style adjustment parameters include at least style interference parameters; when the second type of information included in the classification result is not empty, the style adjustment parameters include at least style auxiliary parameters.

[0102] The control center adjusts the target style control parameters corresponding to each target style group according to the style adjustment parameters corresponding to each target style group, obtains the adjusted target style control parameters, and performs style control operations on the target style group corresponding to each adjusted target style control parameter.

[0103] In this embodiment of the invention, the target information that meets the preset conditions may include target information that affects style control parameters. For example, if there are users and refrigerators in the current scene, and the object information targeted by the air conditioning control is the user's information in the current scene, then the refrigerator's information in the current scene is the target information that affects the style control parameters corresponding to the user's information.

[0104] As can be seen, this optional embodiment can adjust the style control parameters corresponding to each style group according to the determined target information (the target information includes interference information and / or auxiliary information) to obtain the adjusted style control parameters, thereby improving the accuracy of the finally determined style control parameters and thus facilitating the precise control of each style group.

[0105] In another optional embodiment, the target style control parameters generated and determined by the control center based on external information for each of the multiple target style groups may also include the following operations:

[0106] When the external information includes the set of scene parameters of the current scene and the set of scene parameters of the current scene includes the object information of the first target object, the control center determines the duration of the current motion state of the first target object based on the motion parameters of the first target object, and determines the first demand state of the first target object for air conditioning control based on the motion parameters and the duration.

[0107] The control center estimates the expected duration of the first target object's current motion state based on the motion parameters of the first target object, and determines the second demand state of the first target object for air conditioning control based on the motion parameters and the expected duration.

[0108] The control center generates and determines the target style control parameters for each of the multiple target style groups based on the first and second demand states.

[0109] In this embodiment of the invention, both the first demand state and the second demand state are used to represent the degree of demand of the first target object for one or more environmental parameters. The environmental parameters may include one or more of temperature, humidity, air volume, wind direction, etc., and this embodiment of the invention does not limit them.

[0110] As can be seen, this optional embodiment can generate style control parameters corresponding to each target style group based on the determined first and second demand states of the target object, thereby improving the matching degree between the style control parameters and the target object's demand for environmental parameters, and thus enhancing the user experience of the target object.

[0111] In another optional embodiment, the target style control parameters corresponding to each of the multiple target style groups generated and determined by the control center based on external information may also include the following operations:

[0112] When the external information includes the scene parameter set of the current scene and the number of first target objects in the scene parameter set of the current scene is greater than 1, the control center determines the target attribute set corresponding to all first target objects. The target attribute set includes at least one of the following: type corresponding to all first target objects, age group corresponding to all first target objects, and gender corresponding to all first target objects.

[0113] The control center determines the baseline sensitivity for each attribute in the target attribute set;

[0114] The control center determines the average comfort perception information of all first target objects based on the baseline sensitivity of all attributes in the target attribute set;

[0115] The control center generates and determines the target style control parameters for each of the multiple target style groups based on the average comfort perception information.

[0116] The baseline sensitivity for each attribute in the target attribute set mentioned above may include:

[0117] For each attribute in the target attribute set, determine the environmental sensitivity corresponding to each attribute content under that attribute, and determine the baseline sensitivity corresponding to that attribute based on the environmental sensitivity corresponding to all attribute content under that attribute.

[0118] As can be seen, this optional embodiment can, when the number of target objects is greater than 1, derive the average comfort perception information of all target objects based on the baseline sensitivity of all attributes in the determined target attribute set, and generate style control parameters corresponding to each style group based on the average comfort perception information. This can improve the matching degree between the style control parameters and the target object's perception of environmental parameters, which is beneficial to improving the user experience of the target object.

[0119] Example 2

[0120] Please see Figure 3 , Figure 3 This is a flowchart illustrating another style of programmable air conditioner control method disclosed in an embodiment of the present invention. Figure 3 The described control method for a style-programmable air conditioner is applied in a control center for style control of the air conditioner, such as a local server or cloud server for style control of the air conditioner. This invention is not limited to this specific implementation. Figure 3 As shown, the control method for this type of programmable air conditioner may include the following operations:

[0121] 201. The control center receives external information.

[0122] 202. The control center identifies multiple target style groups from all style groups.

[0123] 203. The control center generates and determines the target style control parameters for each of the multiple target style groups based on external information.

[0124] 204. The control center performs style control operations on each target style group according to the target style control parameters corresponding to each target style group.

[0125] In this embodiment of the invention, for other descriptions of steps 201, 203 and 204, please refer to the detailed description of steps 101, 102 and 103 in Embodiment 1. These descriptions will not be repeated in this embodiment of the invention.

[0126] As can be seen, the control method for the programmable air conditioner described in this embodiment of the invention can analyze the received external information through the control center to obtain the style control parameters corresponding to each style group (a style group includes one or more styles), and control the corresponding style on the programmable air conditioner according to the style control parameters of each style group. This improves the accuracy of style control by the programmable air conditioner, enhances the convenience and efficiency of adjusting environmental parameters, further improves the user experience, and also increases user stickiness and the intelligence level of the programmable air conditioner. Furthermore, it can accurately select the style groups that need to be adjusted from all style groups, reducing the need to process style groups that do not require adjustment, thereby improving the speed and accuracy of determining style control parameters.

[0127] In an optional embodiment, the control center generates and determines target style control parameters for each of the multiple target style groups based on external information, which may include:

[0128] The control center inputs external information into a pre-set first computational model and obtains the first output result of the first computational model. Based on the first output result, it generates target style control parameters corresponding to each of the multiple target style groups; or,

[0129] The control center inputs external information into a pre-set second calculation model and obtains the second output result of the second calculation model. The control center also inputs external information into a pre-set third calculation model and obtains the third output result of the third calculation model. Based on the second and third output results, the control center generates and determines the target style control parameters corresponding to each of the multiple target style groups.

[0130] In this embodiment of the invention, the first computing model, the second computing model, and the third computing model can all be online computing models or training models obtained offline under multiple typical application scenarios. It should be noted that when the second computing model is the aforementioned training model, the third computing model is an online computing model; and when the second computing model is an online computing model, the third computing model is the aforementioned training model.

[0131] As can be seen, implementing this optional embodiment can accurately derive style control parameters through one or more computational models, improving the diversity and flexibility of methods for determining style control parameters, and thus improving the accuracy of style control parameters.

[0132] In this optional embodiment, as an optional implementation, the control center generates and determines target style control parameters corresponding to each of the multiple target style groups based on the second and third output results, which may include:

[0133] The control center performs a fusion operation on the second and third output results to obtain a fused output result, and generates target style control parameters corresponding to each of the multiple target style groups based on the fused output result; or,

[0134] The control center selects one of the second and third output results as the baseline output result, and updates the baseline output result using the remaining output results from the second and third output results excluding the baseline output result, obtaining the updated output result. Based on the updated output result, it generates target style control parameters corresponding to each of the multiple target style groups; or,

[0135] The control center determines the degree of difference between the second and third output results, and generates and determines the target style control parameters corresponding to each of the multiple target style groups based on the degree of difference, the second output result, and the third output result.

[0136] In this optional embodiment, examples are as follows:

[0137] Optionally, the control center performs a fusion operation on the second and third output results to obtain a fused output result, and generates target style control parameters corresponding to each of the multiple target style groups determined based on the fused output result, which may include:

[0138] F = W1X1 + W2X2;

[0139] Where F represents the target style control parameter, X1 represents the second output result, X2 represents the third output result, and W1 and W2 are the weights corresponding to the second and third output results, respectively.

[0140] Further, optionally, the control center determines the difference between the second and third output results, and generates and determines the target style control parameters for each of the multiple target style groups based on the difference, the second output result, and the third output result. An example of this can be given below:

[0141] The second computational model is an online computational model, and the third computational model is the aforementioned training model. When the difference is within the first difference interval, the control center generates and determines the target style control parameters corresponding to each of the multiple target style groups based on the computational results of the online computational model or the aforementioned training model. When the difference is within the second difference interval, the control center performs weighted processing on the computational results of the online computational model and the aforementioned training model, and generates and determines the target style control parameters corresponding to each of the multiple target style groups based on the weighted processing result. When the difference is within the third difference interval, the control center generates and determines the target style control parameters corresponding to each of the multiple target style groups based on the computational results of the online computational model.

[0142] As can be seen, implementing this optional implementation method can perform diversified processing on multiple output results obtained from multiple computational models to determine accurate style control parameters, thereby improving the diversity and reliability of the determined style control parameters.

[0143] In this optional embodiment, as another optional implementation, the control center selects one of the second and third output results as the reference output result, which may include:

[0144] The control center calculates the first matching degree between the second calculation model and the current scene, and the second matching degree between the third calculation model and the current scene;

[0145] The control center selects the highest matching degree from the first matching degree and the second matching degree, and determines the output result of the calculation model corresponding to the highest matching degree as the benchmark output result.

[0146] As can be seen, implementing this optional implementation method can filter out the benchmark output results of the computational model with the highest matching degree based on the matching degree between each computational model and the current scene, thereby improving the accuracy of the filtered benchmark output results and thus improving the accuracy of the determined style control parameters.

[0147] In another alternative embodiment, the control center may determine multiple target style groups from all style groups, which may include:

[0148] When the external information includes the set of scene parameters of the current scene and the set of scene parameters of the current scene includes the object information of the first target object, the control center determines the air conditioning control requirements of the first target object based on the object information of the first target object.

[0149] The control center calculates the control matching degree between each style group and the air conditioning control requirements, and obtains the control matching degree corresponding to each style group;

[0150] The control center selects multiple target style groups from all style groups whose corresponding regulation matching degree is greater than or equal to the preset matching degree threshold.

[0151] As can be seen, implementing this optional embodiment can select multiple target style groups from all style groups based on the determined air conditioning control requirements, with the corresponding control matching degree being greater than or equal to the preset control matching degree threshold. This improves the accuracy of the selected target style groups and thus improves the control precision of the target style groups.

[0152] In this optional embodiment, as an optional implementation, the control center determines the air conditioning control requirements of the first target object based on the object information of the first target object, which may include:

[0153] The control center groups the object information of the first target object according to the category of air conditioning control demand, resulting in multiple sub-object information groups. The sub-object information within the same sub-object information group corresponds to the same category of air conditioning control demand.

[0154] The control center determines the sub-air conditioning control requirements corresponding to each sub-object information group based on the sub-object information included in each sub-object information group;

[0155] The control center determines the air conditioning control requirements of the first target object based on the control requirements of all sub-air conditioning units.

[0156] It is evident that implementing this optional implementation method can determine the sub-air conditioning control requirements corresponding to each sub-object information based on the information of each sub-object in the determined target object, and determine the air conditioning control requirements of the target object based on all sub-air conditioning control requirements, thereby improving the speed and accuracy of determining the air conditioning control requirements, and thus improving the speed and accuracy of determining the target style group.

[0157] Example 3

[0158] Please see Figure 4 , Figure 4 This is a schematic flowchart of a control device for a programmable air conditioner according to an embodiment of the present invention. Figure 4The described control device for a style-programmable air conditioner is applied in a control center for style control of the air conditioner, such as a local server or cloud server for style control of the air conditioner, etc., and this embodiment of the invention is not limited thereto. Figure 4 As shown, the control device for this type of programmable air conditioner may include:

[0159] The receiving module 301 is used to receive external information, including the set of scene parameters of the current scene where the style programmable air conditioner is located and / or the control instructions triggered by the user.

[0160] The generation module 302 is used to generate target style control parameters for each of the multiple target style groups determined by external information.

[0161] The execution module 303 is used to perform style control operations on each target style group according to the target style control parameters corresponding to each target style group. The style control operations are used to adjust the air outlet parameters of the corresponding target style group.

[0162] It is evident that implementation Figure 4 The control device for the described style-programmable air conditioner can analyze the received external information through the control center to obtain the style control parameters corresponding to each style group (a style group includes one or more styles), and control the corresponding style on the style-programmable air conditioner according to the style control parameters of each style group. This improves the accuracy of style control of the style-programmable air conditioner, facilitates the adjustment of environmental parameters and improves the user experience of the style-programmable air conditioner, further enhances user stickiness, and improves the intelligence level of the style-programmable air conditioner.

[0163] In an optional embodiment, the generation module 302 may generate target style control parameters for each of the multiple target style groups determined based on external information in a specific manner, including:

[0164] External information is input into a pre-defined first computational model, and the first output result of the first computational model is obtained. Based on the first output result, target style control parameters are generated for each of the multiple target style groups that have been determined; or...

[0165] External information is input into a pre-defined second calculation model, and the second output result of the second calculation model is obtained. External information is input into a pre-defined third calculation model, and the third output result of the third calculation model is obtained. Target style control parameters are generated and determined for each of the multiple target style groups based on the second and third output results.

[0166] As can be seen, implementing this optional embodiment can accurately derive style control parameters through one or more computational models, improving the diversity and flexibility of methods for determining style control parameters, and thus improving the accuracy of style control parameters.

[0167] In this optional embodiment, as an optional implementation method, the generation module 302 generates and determines the target style control parameters corresponding to each of the multiple target style groups based on the second output result and the third output result, specifically including:

[0168] Perform a fusion operation on the second and third output results to obtain a fused output result, and generate target style control parameters corresponding to each of the multiple target style groups determined based on the fused output result; or,

[0169] Select one of the second and third output results as the baseline output result, and update the baseline output result using the remaining output results from the second and third output results excluding the baseline output result to obtain the updated output result. Then, generate the target style control parameters corresponding to each of the multiple target style groups determined based on the updated output result; or,

[0170] Determine the degree of difference between the second and third output results, and generate target style control parameters for each of the multiple target style groups based on the degree of difference, the second output result, and the third output result.

[0171] As can be seen, implementing this optional implementation method can perform diversified processing on multiple output results obtained from multiple computational models to determine accurate style control parameters, thereby improving the diversity and reliability of the determined style control parameters.

[0172] In this optional embodiment, as another optional implementation, the method by which the generation module 302 selects one of the output results from the second output result and the third output result as the baseline output result may specifically include:

[0173] Calculate the first matching degree between the second calculation model and the current scene, and the second matching degree between the third calculation model and the current scene;

[0174] Select the highest matching degree from the first matching degree and the second matching degree, and determine the output result of the calculation model corresponding to the highest matching degree as the benchmark output result.

[0175] As can be seen, implementing this optional implementation method can filter out the benchmark output results of the computational model with the highest matching degree based on the matching degree between each computational model and the current scene, thereby improving the accuracy of the filtered benchmark output results and thus improving the accuracy of the determined style control parameters.

[0176] Optionally, the set of scene parameters for the current scene may include environmental information of the current scene and / or object information of the first target object to which the air conditioning control is directed in the current scene and / or object information of the second target object in the current scene whose correlation with the air conditioning control is greater than or equal to a preset correlation threshold.

[0177] The environmental information of the current scene may include at least one of the following: temperature, humidity, wind speed, wind shape, and air quality index. The object information of the first target object may include at least one of the following: the attributes of the first target object, the number of the first target object, the motion parameters of the first target object, the position change parameters of the first target object, the orientation change parameters of the first target object, and the physiological state parameters of the first target object. The object information of the second target object may include the type of the second target object, the number of the second target object, the layout position of the second target object, the current state of the second target object, and the duration of the second target object being in the current state.

[0178] Optionally, the target style control parameters corresponding to each target style group may include one or more combinations of the following: main air outlet direction, air outlet speed, air outlet area, air outlet angle in the corresponding main air outlet direction, air outlet temperature, air outlet volume, air outlet humidity, and air outlet shape for each style in each target style group.

[0179] As can be seen, this optional embodiment can receive diverse external information through the control center, analyze this diverse external information, obtain diverse target style control parameters, and then perform control operations on the style-programmable air conditioner according to the diverse target style control parameters, which is beneficial to improving the accuracy and convenience of the style-programmable air conditioner in controlling the programmable style.

[0180] In an optional embodiment, such as Figure 5 As shown, the device may further include:

[0181] The determination module 304 is used to determine multiple target style groups from all style groups before the generation module 302 generates and determines the target style control parameters corresponding to each target style group in the multiple target style groups based on external information.

[0182] In this optional embodiment, the determining module 304 may include:

[0183] The determination submodule 3041 is used to determine the air conditioning control requirements of the first target object based on the object information of the first target object before the generation module 302 generates and determines the target style control parameters corresponding to each of the multiple target style groups based on external information. When the external information includes the scene parameter set of the current scene and the scene parameter set of the current scene includes the object information of the first target object, the calculation submodule 3042 is used to calculate the control matching degree between each style group and the air conditioning control requirements, and obtain the control matching degree corresponding to each style group.

[0184] Select submodule 3043 to select multiple target style groups from all style groups whose corresponding control matching degree is greater than or equal to the preset matching degree threshold.

[0185] It is evident that implementation Figure 5 The described control device for a programmable air conditioner can select multiple target style groups from all style groups based on the determined air conditioning control requirements, provided that the control matching degree is greater than or equal to a preset control matching degree threshold. This improves the accuracy of the selected target style groups and thus enhances the precision of the control over the target style groups.

[0186] In this optional embodiment, as an optional implementation, the determining submodule 3041 determines the air conditioning control requirements of the first target object based on the object information of the first target object, which may include:

[0187] The control center groups the object information of the first target object according to the category of air conditioning control demand, resulting in multiple sub-object information groups. The sub-object information within the same sub-object information group corresponds to the same category of air conditioning control demand.

[0188] The control center determines the sub-air conditioning control requirements corresponding to each sub-object information group based on the sub-object information included in each sub-object information group;

[0189] The control center determines the air conditioning control requirements of the first target object based on the control requirements of all sub-air conditioning units.

[0190] It is evident that implementing this optional implementation method can determine the sub-air conditioning control requirements corresponding to each sub-object information based on the information of each sub-object in the determined target object, and determine the air conditioning control requirements of the target object based on all sub-air conditioning control requirements, thereby improving the speed and accuracy of determining the air conditioning control requirements, and thus improving the speed and accuracy of determining the target style group.

[0191] Example 4

[0192] Please see Figure 6 , Figure 6 This is a schematic diagram of the control device for another type of programmable air conditioner disclosed in an embodiment of the present invention. Figure 6 As shown, the control device for this type of programmable air conditioner may include:

[0193] Memory 401 storing executable program code;

[0194] Processor 402 coupled to memory 401;

[0195] The processor 402 calls the executable program code stored in the memory 401 to execute the steps in the control method of the style programmable air conditioner described in Embodiment 1 or Embodiment 2 of the present invention.

[0196] Example 5

[0197] This invention discloses a computer storage medium storing computer instructions. When these computer instructions are invoked, they are used to execute the steps in the control method for a style-programmable air conditioner described in Embodiment 1 or Embodiment 2 of this invention.

[0198] Example 6

[0199] This invention discloses a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to cause a computer to perform the steps in the control method for a style programmable air conditioner described in Embodiment 1 or Embodiment 2.

[0200] The device embodiments described above are merely illustrative. The modules described as separate components may or may not be physically separate. The components shown as modules may or may not be physical modules; that is, they may be located in one place or distributed across multiple network modules. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs. Those skilled in the art can understand and implement this without any creative effort.

[0201] Through the detailed description of the above embodiments, those skilled in the art can clearly understand that each implementation method can be implemented by means of software plus necessary general-purpose hardware platforms, and of course, it can also be implemented by hardware. Based on this understanding, the above technical solutions, in essence or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product can be stored in a computer-readable storage medium, including read-only memory (ROM), random access memory (RAM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), one-time programmable read-only memory (OTPROM), electrically-Erasable Programmable Read-Only Memory (EEPROM), compact disc read-only memory (CD-ROM) or other optical disc storage, disk storage, magnetic tape storage, or any other computer-readable medium that can be used to carry or store data.

[0202] Finally, it should be noted that the control method and device for a programmable air conditioner disclosed in the embodiments of the present invention are merely preferred embodiments of the present invention and are only used to illustrate the technical solutions of the present invention, not to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A control method for a style-programmable air conditioner, characterized in that, The programmable air conditioner includes multiple programmable controllable style groups, each style group including one or more styles. The method is applied to a control center that controls the style of the programmable air conditioner, and the method includes: The control center receives external information, including a set of scene parameters for the current scene where the style programmable air conditioner is located and / or control commands triggered by the user. The control center generates and determines target style control parameters for each of the multiple target style groups based on the external information. The control center performs style control operations on each target style group according to the target style control parameters corresponding to each target style group, wherein the style control operations are used to adjust the air outlet parameters of the corresponding target style group. The control center generates and determines target style control parameters for each of the multiple target style groups based on the external information, including: The control center inputs the external information into a pre-set first calculation model, obtains the first output result of the first calculation model, and generates target style control parameters corresponding to each of the multiple target style groups determined based on the first output result; or... The control center inputs the external information into a pre-set second calculation model and obtains the second output result of the second calculation model. The control center also inputs the external information into a pre-set third calculation model and obtains the third output result of the third calculation model. The control center generates and determines target style control parameters corresponding to each of the multiple target style groups based on the second output result and the third output result. The control center generates and determines target style control parameters for each of the multiple target style groups based on the second and third output results, including: The control center performs a fusion operation on the second output result and the third output result to obtain a fused output result, and generates target style control parameters corresponding to each of the multiple target style groups determined based on the fused output result; or... The control center selects one of the second and third output results as the baseline output result, and updates the baseline output result using the remaining output results from the second and third output results excluding the baseline output result, to obtain the updated output result. Based on the updated output result, it generates target style control parameters corresponding to each of the multiple target style groups; or, The control center determines the degree of difference between the second output result and the third output result, and generates target style control parameters corresponding to each of the multiple target style groups based on the degree of difference, the second output result, and the third output result; The current scene parameter set includes the environmental information of the current scene and / or the object information of the first target object to which the air conditioning control is directed in the current scene and / or the object information of the second target object in the current scene whose correlation with the air conditioning control is greater than or equal to a preset correlation threshold. The environmental information of the current scene includes at least one of the following: temperature, humidity, wind speed, wind shape, and air quality index; the object information of the first target object includes at least one of the following: the attributes of the first target object, the number of the first target objects, the motion parameters of the first target object, the position change parameters of the first target object, the orientation change parameters of the first target object, and the physiological state parameters of the first target object; the object information of the second target object includes the layout position of the second target object, the current state of the second target object, and the duration of the second target object being in the current state. The target style control parameters corresponding to each target style group include one or more combinations of the following for each style in each target style group: main air outlet direction, air outlet speed, air outlet area, air outlet angle in the corresponding main air outlet direction, air outlet temperature, air outlet volume, air outlet humidity, and air outlet shape.

2. The control method for a programmable air conditioner according to claim 1, characterized in that, The control center selects one of the output results from the second output result and the third output result as the reference output result, including: The control center calculates the first matching degree between the second calculation model and the current scene, and the second matching degree between the third calculation model and the current scene; The control center selects the highest matching degree from the first matching degree and the second matching degree, and determines the output result of the calculation model corresponding to the highest matching degree as the benchmark output result.

3. The control method for a style-programmable air conditioner according to claim 1, characterized in that, Before the control center generates and determines the target style control parameters corresponding to each of the multiple target style groups based on the external information, the method further includes: The control center determines multiple target style groups from all the style groups; The control center determines multiple target style groups from all the style groups, including: When the external information includes the scene parameter set of the current scene and the scene parameter set of the current scene includes the object information of the first target object, the control center determines the air conditioning control requirements of the first target object based on the object information of the first target object. The control center calculates the control matching degree between each style group and the air conditioning control requirements to obtain the control matching degree corresponding to each style group; The control center selects multiple target style groups from all the style groups whose corresponding adjustment matching degree is greater than or equal to a preset matching degree threshold.

4. The control method for a style-programmable air conditioner according to claim 3, characterized in that, The control center determines the air conditioning control requirements of the first target object based on the object information of the first target object, including: The control center groups the object information of the first target object according to the air conditioning control demand category to obtain multiple sub-object information groups. The sub-object information in the same sub-object information group corresponds to the same air conditioning control demand category. The control center determines the sub-air conditioning control requirements corresponding to each sub-object information group based on the sub-object information included in each sub-object information group; The control center determines the air conditioning control requirements of the first target object based on all the sub-air conditioning control requirements.

5. A control device for a programmable air conditioner, characterized in that, The programmable air conditioner includes multiple programmable controllable style groups, each style group including one or more styles. The device is applied in a control center for style control of the programmable air conditioner, and the device is used to execute the control method of the programmable air conditioner as described in any one of claims 1-4; and the device includes: A receiving module is used to receive external information, including a set of scene parameters for the current scene where the style programmable air conditioner is located and / or control commands triggered by the user. The generation module is used to generate target style control parameters corresponding to each of the multiple target style groups determined based on the external information. The execution module is used to perform style control operations on each target style group according to the target style control parameters corresponding to each target style group, wherein the style control operations are used to adjust the air outlet parameters of the corresponding target style group.

6. A control device for a programmable air conditioner, characterized in that, The device includes: Memory containing executable program code; A processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the control method for a style-programmable air conditioner as described in any one of claims 1-4.

7. A computer storage medium, characterized in that, The computer storage medium stores computer instructions, which, when invoked, are used to execute the control method for a style-programmable air conditioner as described in any one of claims 1-4.

Citation Information

Patent Citations

  • Operation mode self-defining control method and system for air conditioner

    CN104807134A

  • Air conditioner air outlet control method and terminal

    CN107860100A