Method and apparatus for intelligent conditioning of a zone environment

By determining the relationship between the air conditioner and the user's location, and adjusting the air supply distance and angle, the inconvenience of air conditioner adjustment for the elderly and other groups has been solved, realizing intelligent and accurate air conditioner adjustment, and improving user comfort and experience.

CN117433121BActive Publication Date: 2025-11-21GUANGZHOU LINKAGE ALL THINGS TECH CO LTD
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Patent Information

Application Number
CN202210854334.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-07-14
Publication Date
2025-11-21
Estimated Expiration
2042-07-14

AI Technical Summary

Technical Problem

Elderly people and other groups often find it difficult to adjust air conditioning accurately, leading to inconvenience and health problems. Existing air conditioning control methods lack intelligence and accuracy.

Method used

By determining the relative positional relationship between the target user's geographical location and the air conditioner, the air delivery distance and angle of the air conditioner are analyzed and adjusted to match the user's location, thus achieving intelligent adjustment.

Benefits of technology

It improves the intelligence and accuracy of air conditioning adjustment, enhancing user comfort and experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of intelligent adjustment method and device of regional environment, the method includes: determining the geographical position of target user in current area, according to geographical position and the position of air conditioner, the relative position relationship between target user and air conditioner is analyzed, analysis result is obtained, when analysis result is used to indicate that relative position relationship meets pre-set position relationship condition, according to the geographical position of target user, relative position relationship and the air supply distance of air conditioner current operation mode, the control mode of air conditioner is determined, control air conditioner executes the operation matched with control mode, to make the air supply distance of air conditioner and relative position relationship match.Visible, implementation application can be advantageous to improve the intelligence of adjusting air conditioner, and can be advantageous to improve the accuracy of adjusting air conditioner, to further can be advantageous to improve the comfort and experience of user using air conditioner.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of intelligent control, and in particular to an intelligent adjustment method and device for a regional environment. BACKGROUND

[0002] As a common household appliance, air conditioners have been widely used in people's daily life and have become an indispensable electrical device in people's daily life.

[0003] At present, the adjustment and control of air conditioners is usually performed by a remote controller. With the progress of science and technology, the adjustment and control of air conditioners has become increasingly diverse, such as adjustment through a mobile phone app. However, for some groups, such as the elderly, there are still many inconvenient factors in the use and adjustment of air conditioners. The elderly may not be able to adjust the air conditioner or may adjust it incorrectly, which can easily affect the user's experience and further lead to problems in physical health (such as wind-cold, cold, dry heat, etc.). Therefore, it is particularly important to provide a new intelligent adjustment method to improve the intelligence and accuracy of air conditioner adjustment. SUMMARY

[0004] The technical problem to be solved by the present application is to provide an intelligent adjustment method and device for a regional environment, which can determine the control parameters of an air conditioner according to the information of a user in the regional environment, control the air conditioner to perform an operation matching the control parameters, improve the intelligence of adjusting the air conditioner, improve the accuracy of adjusting the air conditioner, and further improve the comfort and experience of the user using the air conditioner.

[0005] To solve the above technical problem, the present application discloses an intelligent adjustment method for a regional environment, which comprises:

[0006] determining the geographical position of a target user in a current regional environment, analyzing the relative positional relationship between the target user and an air conditioner according to the geographical position and the position of the air conditioner, and obtaining an analysis result;

[0007] when the analysis result indicates that the relative positional relationship meets a pre-set positional relationship condition, determining the control mode of the air conditioner according to the geographical position of the target user, the relative positional relationship, and the air blowing distance of the current operation mode of the air conditioner;

[0008] controlling the air conditioner to perform an operation matching the control mode, so that the air blowing distance of the air conditioner matches the relative positional relationship.

[0009] As an optional implementation, in the first aspect of the present application, the method further comprises:

[0010] obtain current operation information of the air conditioner, the current operation information of the air conditioner including a first rotating speed of a current operation mode of the air conditioner, a first outlet opening degree value of the current operation mode of the air conditioner, a first shunt plate opening angle of the current operation mode of the air conditioner, and a first air guide angle of the current operation mode of the air conditioner;

[0011] determine a control mode of the air conditioner according to the geographic position of the target user, the relative position relationship, and a blowing distance of the current operation mode of the air conditioner;

[0012] determine a control mode of the air conditioner according to the geographic position of the target user, the relative position relationship, the blowing distance of the current operation mode of the air conditioner, and the current operation information of the air conditioner;

[0013] When the relative position relationship indicates that the distance between the geographic position of the target user and the position of the air conditioner is greater than the blowing distance of the current operation mode of the air conditioner, the control mode of the air conditioner is a first control mode; and when the relative position relationship indicates that the distance between the geographic position of the target user and the position of the air conditioner is less than the blowing distance of the current operation mode of the air conditioner, the control mode of the air conditioner is a second control mode.

[0014] As an optional implementation, in the first aspect of the present application, when the relative position relationship indicates that the distance between the geographic position of the target user and the position of the air conditioner is greater than the blowing distance of the current operation mode of the air conditioner, the controlling the air conditioner to perform an operation matched with the control mode comprises:

[0015] adjusting the first shunt plate opening angle to a second shunt plate opening angle according to the control mode, wherein the second shunt plate opening angle is greater than the first shunt plate opening angle;

[0016] calculating a first blowing distance value of the air conditioner according to the first rotating speed, the second shunt plate opening angle, and the first air guide angle, and determining whether the first blowing distance value matches the relative position relationship;

[0017] adjusting the first air guide angle to a second air guide angle according to the control mode when it is determined that the first blowing distance value does not match the relative position relationship, wherein the second air guide angle is greater than the first air guide angle;

[0018] calculating a second blowing distance value of the air conditioner according to the first rotating speed, the second shunt plate opening angle, and the second air guide angle, and determining whether the second blowing distance value matches the relative position relationship;

[0019] When it is judged that the second air supply distance value matches the relative position relationship, the air conditioner is controlled to operate in the manner of the first rotating speed, the second baffle opening angle and the second air guide angle.

[0020] As an optional implementation, in the first aspect of the present application, when the relative position relationship is used to represent that the distance between the geographical position of the target user and the position of the air conditioner is less than the air supply distance of the current operating mode of the air conditioner, the control of the air conditioner to perform the operation matching the control mode comprises:

[0021] According to the control mode, the first baffle opening angle is adjusted to a third baffle opening angle, wherein the third baffle opening angle is less than the first baffle opening angle;

[0022] A third air supply distance value of the air conditioner is calculated according to the first rotating speed, the third baffle opening angle and the first air guide angle, and it is judged whether the third air supply distance value matches the relative position relationship;

[0023] When it is judged that the third air supply distance value does not match the relative position relationship, according to the control mode, the first air guide angle is adjusted to a third air guide angle, wherein the third air guide angle is less than the first air guide angle;

[0024] A fourth air supply distance value of the air conditioner is calculated according to the first rotating speed, the third baffle opening angle and the third air guide angle, and it is judged whether the fourth air supply distance value matches the relative position relationship;

[0025] When it is judged that the fourth air supply distance value matches the relative position relationship, the air conditioner is controlled to operate in the manner of the first rotating speed, the third baffle opening angle and the third air guide angle.

[0026] As an optional implementation, in the first aspect of the present application, the determination of the control mode of the air conditioner according to the geographical position of the target user, the relative position relationship, the air supply distance of the current operating mode of the air conditioner and the current operating information of the air conditioner comprises:

[0027] According to the geographical position of the target user, the relative position relationship and the current operating information of the air conditioner, an initial control parameter of the air conditioner is generated;

[0028] According to the initial control parameter, an initial control effect generated after the air conditioner performs the operation matching the initial control parameter is simulated;

[0029] It is judged whether the initial control effect meets the pre-set air conditioner operating condition;

[0030] determining the initial control parameter as the control mode of the air conditioner when it is judged that the initial control effect meets the preset air conditioner running condition;

[0031] generating a correction control parameter according to the initial control effect and the preset air conditioner running condition when it is judged that the initial control effect does not meet the preset air conditioner running condition, and determining the correction control parameter as the control mode of the air conditioner.

[0032] As an optional implementation, in the first aspect of the present application, the generating of the initial control parameter of the air conditioner according to the geographical position of the target user, the relative position relationship and the current running information of the air conditioner comprises:

[0033] analyzing the control type of the air conditioner control parameter according to the current user position and the user distance value, the control type comprising the type of increasing the air supply distance of the air conditioner or the type of reducing the air supply distance of the air conditioner;

[0034] determining a target calculation algorithm set matched with the control type according to the control type, and calculating the initial control parameter of the air conditioner according to the calculation algorithm included in the target calculation algorithm set.

[0035] As an optional implementation, in the first aspect of the present application, the generating of the correction control parameter according to the initial control effect and the preset air conditioner running condition comprises:

[0036] analyzing the difference information of each parameter between the initial control effect and the preset air conditioner running condition, wherein the difference information of each parameter comprises a difference type and a difference degree, and all the parameters comprise one or more of the rotation speed of the air conditioner, the air outlet opening value of the air conditioner, the opening angle of the air conditioner, and the guide angle of the air conditioner;

[0037] for each parameter, determining the influence degree of the parameter on the initial control effect according to the difference type and the difference degree corresponding to the parameter;

[0038] determining a correction calculation algorithm set matched with the control parameter of the air conditioner according to the influence degree, the difference type and the difference degree of each parameter, and calculating the correction control parameter of the air conditioner according to the correction algorithm included in the correction calculation algorithm set.

[0039] The second aspect of the present application discloses an intelligent adjustment device of a regional environment, the device comprising: a determination module for determining the geographical position of a target user in a current regional environment;

[0040] an analysis module configured to analyze a relative position relationship between the target user and the air conditioner according to the geographic position and a position of the air conditioner, and obtain an analysis result;

[0041] The determination module is further configured to determine a control mode of the air conditioner according to the geographic position of the target user, the relative position relationship, and a blowing distance of a current operation mode of the air conditioner, when the analysis result indicates that the relative position relationship satisfies a pre-set position relationship condition.

[0042] The control module is configured to control the air conditioner to perform an operation matched with the control mode, so as to match the blowing distance of the air conditioner with the relative position relationship.

[0043] As an optional implementation, in the second aspect, the device further comprises:

[0044] an acquisition module configured to acquire current operation information of the air conditioner, wherein the current operation information of the air conditioner comprises a first rotating speed of a current operation mode of the air conditioner, a first air outlet opening degree value of the current operation mode of the air conditioner, a first shunt plate opening angle of the current operation mode of the air conditioner, and a first air guide angle of the current operation mode of the air conditioner.

[0045] The determination module determines the control mode of the air conditioner according to the geographic position of the target user, the relative position relationship, and the blowing distance of the current operation mode of the air conditioner.

[0046] The determination module determines the control mode of the air conditioner according to the geographic position of the target user, the relative position relationship, the blowing distance of the current operation mode of the air conditioner, and the current operation information of the air conditioner.

[0047] When the relative position relationship indicates that a distance between the geographic position of the target user and the position of the air conditioner is greater than the blowing distance of the current operation mode of the air conditioner, the control mode of the air conditioner is a first control mode; and when the relative position relationship indicates that the distance between the geographic position of the target user and the position of the air conditioner is less than the blowing distance of the current operation mode of the air conditioner, the control mode of the air conditioner is a second control mode.

[0048] As an optional implementation, in the second aspect, the control module controls the air conditioner to perform the operation matched with the control mode in the following manner:

[0049] when the relative position relation is used to indicate that the distance between the geographic position of the target user and the position of the air conditioner is greater than the air supply distance of the current operation mode of the air conditioner, according to the control mode, the first shunt plate opening angle is adjusted to a second shunt plate opening angle, wherein the second shunt plate opening angle is greater than the first shunt plate opening angle;

[0050] a first air supply distance value of the air conditioner is calculated according to the first rotating speed, the second shunt plate opening angle and the first air guide angle, and it is judged whether the first air supply distance value matches the relative position relation;

[0051] when it is judged that the first air supply distance value does not match the relative position relation, according to the control mode, the first air guide angle is adjusted to a second air guide angle, wherein the second air guide angle is greater than the first air guide angle;

[0052] a second air supply distance value of the air conditioner is calculated according to the first rotating speed, the second shunt plate opening angle and the second air guide angle, and it is judged whether the second air supply distance value matches the relative position relation;

[0053] when it is judged that the second air supply distance value matches the relative position relation, the air conditioner is controlled to operate in the manner of the first rotating speed, the second shunt plate opening angle and the second air guide angle.

[0054] As an optional implementation, in the second aspect, the manner in which the control module controls the air conditioner to perform the operation matching the control mode specifically includes:

[0055] when the relative position relation is used to indicate that the distance between the geographic position of the target user and the position of the air conditioner is less than the air supply distance of the current operation mode of the air conditioner, according to the control mode, the first shunt plate opening angle is adjusted to a third shunt plate opening angle, wherein the third shunt plate opening angle is less than the first shunt plate opening angle;

[0056] a third air supply distance value of the air conditioner is calculated according to the first rotating speed, the third shunt plate opening angle and the first air guide angle, and it is judged whether the third air supply distance value matches the relative position relation;

[0057] when it is judged that the third air supply distance value does not match the relative position relation, according to the control mode, the first air guide angle is adjusted to a third air guide angle, wherein the third air guide angle is less than the first air guide angle;

[0058] According to the first rotating speed, the third opening angle of the third flow distribution plate, and the third air guide angle, a fourth air supply distance value of the air conditioner is calculated, and it is determined whether the fourth air supply distance value matches the relative position relationship;

[0059] When it is determined that the fourth air supply distance value matches the relative position relationship, the air conditioner is controlled to operate in the manner of the first rotating speed, the third opening angle of the third flow distribution plate, and the third air guide angle.

[0060] As an optional implementation, in the second aspect, the manner in which the determining module determines the control mode of the air conditioner according to the geographic position of the target user, the relative position relationship, the air supply distance of the current operating mode of the air conditioner, and the current operating information of the air conditioner is specifically as follows:

[0061] According to the geographic position of the target user, the relative position relationship, and the current operating information of the air conditioner, initial control parameters of the air conditioner are generated;

[0062] According to the initial control parameters, an initial control effect generated after the air conditioner performs an operation matching the initial control parameters is simulated;

[0063] It is determined whether the initial control effect meets a pre-set air conditioner operating condition;

[0064] When it is determined that the initial control effect meets the pre-set air conditioner operating condition, the initial control parameters are determined as the control mode of the air conditioner;

[0065] When it is determined that the initial control effect does not meet the pre-set air conditioner operating condition, a correction control parameter is generated according to the initial control effect and the pre-set air conditioner operating condition, and the correction control parameter is determined as the control mode of the air conditioner.

[0066] As an optional implementation, in the second aspect, the manner in which the determining module generates the initial control parameters of the air conditioner according to the geographic position of the target user, the relative position relationship, and the current operating information of the air conditioner is specifically as follows:

[0067] According to the current user position and the user distance value, a control type of the air conditioner control parameters is analyzed, the control type including a type of increasing the air supply distance of the air conditioner or a type of decreasing the air supply distance of the air conditioner;

[0068] According to the control type, a target calculation algorithm set matching the control type is determined, and according to a calculation algorithm included in the target calculation algorithm set, the initial control parameters of the air conditioner are calculated.

[0069] As an optional implementation, in the second aspect of the present application, the manner of generating the correction control parameter according to the initial control effect and the preset air conditioner operating condition is specifically as follows:

[0070] analyzing difference information of each parameter between the initial control effect and the preset air conditioner operating condition, wherein the difference information of each parameter includes a difference type and a difference degree, and all the parameters include one or more of a rotation speed of the air conditioner, an outlet opening degree value of the air conditioner, a shunt plate opening angle of the air conditioner, and a guide air angle of the air conditioner;

[0071] for each parameter, determining an influence degree of the parameter on the initial control effect according to the difference type and the difference degree corresponding to the parameter;

[0072] determining a correction calculation algorithm set matched with the control parameter of the air conditioner according to the influence degree, the difference type, and the difference degree of each parameter, and calculating the correction control parameter of the air conditioner according to a correction algorithm included in the correction calculation algorithm set.

[0073] The third aspect of the present application discloses another intelligent adjustment device of a regional environment, and the device includes:

[0074] a memory storing executable program codes;

[0075] a processor coupled with the memory;

[0076] the processor invokes the executable program codes stored in the memory to execute the intelligent adjustment method of the regional environment disclosed in the first aspect of the present application.

[0077] The fourth aspect of the present application discloses a computer storage medium, and the computer storage medium stores computer instructions, which are invoked to execute the intelligent adjustment method of the regional environment disclosed in the first aspect of the present application.

[0078] Compared with the prior art, the embodiments of the present application have the following beneficial effects:

[0079] In the embodiment of the present application, the geographic position of the target user in the current regional environment is determined, the relative position relationship between the target user and the air conditioner is analyzed according to the geographic position and the position of the air conditioner, and an analysis result is obtained. When the analysis result indicates that the relative position relationship meets a pre-set position relationship condition, the control mode of the air conditioner is determined according to the geographic position of the target user, the relative position relationship, and the air blowing distance of the current operation mode of the air conditioner, and the air conditioner is controlled to perform an operation matched with the control mode, so as to match the air blowing distance of the air conditioner with the relative position relationship. It can be seen that, by implementing the present application, the control parameter of the air conditioner can be determined according to the information of the user in the regional environment, and the air conditioner is controlled to perform an operation matched with the control parameter, which can be beneficial to improving the intelligence of the air conditioner and the accuracy of the air conditioner, and further can be beneficial to improving the comfort and experience of the user using the air conditioner. BRIEF DESCRIPTION OF DRAWINGS

[0080] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings needed to be used in the embodiments will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without any creative effort on the basis of these drawings.

[0081] Figure 1 is a scene schematic diagram of an intelligent adjustment scene of a regional environment disclosed by an embodiment of the present application;

[0082] Figure 2 is a flow schematic diagram of an intelligent adjustment method of a regional environment disclosed by an embodiment of the present application;

[0083] Figure 3 is a flow schematic diagram of another intelligent adjustment method of a regional environment disclosed by an embodiment of the present application;

[0084] Figure 4 is a structure schematic diagram of an intelligent adjustment device of a regional environment disclosed by an embodiment of the present application;

[0085] Figure 5 is a structure schematic diagram of another intelligent adjustment device of a regional environment disclosed by an embodiment of the present application;

[0086] Figure 6 is a structure schematic diagram of still another intelligent adjustment device of a regional environment disclosed by an embodiment of the present application. DETAILED DESCRIPTION

[0087] In the following, the technical solutions in the embodiments of the present application will be described clearly and completely in combination with the drawings in the embodiments of the present application, so that those skilled in the art can better understand the technical solutions in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, but not all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.

[0088] The terms "first", "second", and the like in the specification and claims of the present application and the above-described drawings are used to distinguish different objects, and are not used to describe a specific order. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion. For example, a process, method, device, product, or the like that includes a series of steps or units is not limited to the listed steps or units, but can optionally include steps or units not listed or can optionally include other steps or units inherent to the process, method, product, or the like.

[0089] In this document, reference to "an embodiment" means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one embodiment of the application. The appearance of the phrase in various places in the specification does not necessarily all refer to the same embodiment, nor does it necessarily refer to a particular alternative embodiment. It is explicitly and implicitly understood that the embodiments described herein can be combined with other embodiments.

[0090] The present application discloses a kind of intelligent adjustment method and device of regional environment, can determine the control parameter of air conditioner according to the information of user in regional environment, and control air conditioner executes the operation matched with control parameter, can be beneficial to improve the intelligence of adjusting air conditioner, and can be beneficial to improve the accuracy of adjusting air conditioner, in turn, can be beneficial to improve the comfort and experience of user using air conditioner. The following are described in detail respectively.

[0091] In order to better understand the intelligent adjustment method and device of regional environment disclosed in the present application, first, the scene of intelligent adjustment of regional environment is described, specifically, the scene of intelligent adjustment of regional environment can be as shown in Figure 1 Figure 1 It is the scene diagram of the scene of intelligent adjustment method of regional environment disclosed in the embodiments of the present application. As shown in Figure 1 ​As shown, the scene of the intelligent adjustment of the regional environment can include an air conditioning device, Xiao Ming, and a bed, wherein Xiao Ming can be a target user, a location where Xiao Ming is located can be a geographic location of the target user in the current regional environment, and the air conditioner can be an air conditioning device that needs to be intelligently adjusted in the regional environment. Optionally, the scene of the intelligent adjustment of the regional environment can be a home scene, or can be a variety of scenes such as a shopping mall scene, a company scene, and the like, and embodiments of the present application are not limited thereto. It should be noted that the intelligent adjustment method in the scene of the intelligent adjustment of the regional environment is to determine the geographic location of the target user in the current regional environment, analyze the relative positional relationship between the target user and the air conditioner according to the geographic location and the location of the air conditioner, obtain an analysis result, when the analysis result is used to indicate that the relative positional relationship meets a pre-set positional relationship condition, determine the control mode of the air conditioner according to the geographic location of the target user, the relative positional relationship, and the air supply distance of the current operation mode of the air conditioner, and control the air conditioner to perform an operation matched with the control mode, so as to make the air supply distance of the air conditioner match the relative positional relationship.

[0092] Optionally, the current operation information of the air conditioner is obtained, and the control mode of the air conditioner is determined according to the geographic location of the target user, the relative positional relationship, the air supply distance of the current operation mode of the air conditioner, and the current operation information of the air conditioner. The current operation information of the air conditioner includes the rotation speed of the current operation mode of the air conditioner, the outlet opening degree value of the current operation mode of the air conditioner, the opening angle of the current operation mode of the air conditioner, and the guide angle of the current operation mode of the air conditioner. In this way, the control mode of the air conditioner can be comprehensively determined according to the obtained current operation information of the air conditioner in combination with the geographic location of the target user, the relative positional relationship, and the air supply distance of the current operation mode of the air conditioner, which can be beneficial to improve the intelligence of the determination of the control mode of the air conditioner, can be beneficial to improve the way of the determination of the control mode of the air conditioner, and can be beneficial to improve the accuracy of the determination of the control mode of the air conditioner.

[0093] Optionally, when the relative position relationship is used to represent that the distance between the geographical position of the target user and the position of the air conditioner is greater than the air supply distance of the current operation mode of the air conditioner, according to the control mode, the first baffle opening angle is increased to the second baffle opening angle, the first air supply distance value of the air conditioner is calculated according to the first rotating speed, the second baffle opening angle and the first air guide angle, it is judged whether the first air supply distance value matches the relative position relationship, if not, according to the control mode, the first air guide angle is increased to the second air guide angle, and the second air supply distance value of the air conditioner is calculated according to the first rotating speed, the second baffle opening angle and the second air guide angle, it is judged whether the second air supply distance value matches the relative position relationship, if it matches, the air conditioner is controlled to run in the mode of the first rotating speed, the second baffle opening angle and the second air guide angle. In this way, it is beneficial to improve the accuracy of controlling the air conditioner according to the control mode, and it is beneficial to improve the accuracy of adjusting the regional environment, and thus it is beneficial to improve the comfort and experience of the user using the air conditioner.

[0094] Optionally, when the relative position relationship is used to represent that the distance between the geographical position of the target user and the position of the air conditioner is less than the air supply distance of the current operation mode of the air conditioner, according to the control mode, the first baffle opening angle is reduced to the third baffle opening angle, the third air supply distance value of the air conditioner is calculated according to the first rotating speed, the third baffle opening angle and the first air guide angle, it is judged whether the third air supply distance value matches the relative position relationship, if not, according to the control mode, the first air guide angle is reduced to the third air guide angle, the fourth air supply distance value of the air conditioner is calculated according to the first rotating speed, the third baffle opening angle and the third air guide angle, it is judged whether the fourth air supply distance value matches the relative position relationship, if it matches, the air conditioner is controlled to run in the mode of the first rotating speed, the third baffle opening angle and the third air guide angle. In this way, it is beneficial to improve the accuracy of controlling the air conditioner according to the control mode, and it is beneficial to improve the accuracy of adjusting the regional environment, and thus it is beneficial to improve the comfort and experience of the user using the air conditioner.

[0095] Optionally, the control mode of the air conditioner is determined according to the geographical position of the target user, the relative position relationship, the air supply distance of the current operation mode of the air conditioner, and the current operation information of the air conditioner, which can include: generating the initial control parameter of the air conditioner according to the geographical position of the target user, the relative position relationship, and the current operation information of the air conditioner, simulating the initial control effect generated after the air conditioner performs an operation matched with the initial control parameter according to the initial control parameter, determining whether the initial control effect meets the pre-set air conditioner operation condition, if yes, determining the initial control parameter as the control mode of the air conditioner, and if no, generating the correction control parameter according to the initial control effect and the pre-set air conditioner operation condition, and determining the correction control parameter as the control mode of the air conditioner. In this way, the control mode of the air conditioner can be determined according to the initial control effect generated by the initial control parameter, which can be beneficial to improve the accuracy of determining the control mode of the air conditioner, and can be beneficial to improve the intelligence of determining the control mode of the air conditioner, thereby being beneficial to improve the accuracy of adjusting the regional environment and being beneficial to improve the comfort and experience of the user using the air conditioner.

[0096] Optionally, the initial control parameter of the air conditioner is generated according to the geographical position of the target user, the relative position relationship, and the current operation information of the air conditioner, which can include: analyzing the control type of the air conditioner control parameter according to the current user position and the user distance value, the control type including the type of increasing the air supply distance of the air conditioner or the type of reducing the air supply distance of the air conditioner, determining the target calculation algorithm set matched with the control type according to the control type, and calculating the initial control parameter of the air conditioner according to the calculation algorithm included in the target calculation algorithm set. In this way, the accuracy of determining the initial control parameter of the air conditioner can be improved, thereby being beneficial to improve the accuracy of determining the control mode of the air conditioner, and being beneficial to improve the accuracy of adjusting the regional environment and being beneficial to improve the comfort and experience of the user using the air conditioner.

[0097] Optionally, the correction control parameter is generated according to the initial control effect and the pre-set air conditioner running condition, which can include: analyzing difference information of each parameter between the initial control effect and the pre-set air conditioner running condition, the difference information of each parameter including a difference type and a difference degree, for each parameter, determining an influence degree of the parameter on the initial control effect according to the difference type and the difference degree of the parameter corresponding to the parameter, determining a correction calculation algorithm set matched with the control parameter of the air conditioner according to the influence degree, the difference type and the difference degree of each parameter, and calculating the correction control parameter of the air conditioner according to a correction algorithm included in the correction calculation algorithm set, so as to facilitate correcting the initial control parameter when the initial control effect generated by the initial control parameter does not meet the pre-set air conditioner running condition, and determining the correction control parameter of the air conditioner according to the difference information and the correction calculation algorithm set, which can facilitate improving the accuracy of determining the correction control parameter, thereby facilitating improving the accuracy of determining the control mode of the air conditioner, and further facilitating improving the accuracy of adjusting the regional environment and improving the comfort and experience of the user using the air conditioner.

[0098] Optionally, for example, as shown in Figure 1 Xiaoming is the target user, the air conditioner device is the air conditioner required to be intelligently adjusted, the position of Xiaoming is the geographical position in the current regional environment, the relative position relationship is the relative position relationship between the position of Xiaoming and the position of the air conditioner, and the pre-set position relationship condition can be judging whether the distance between the geographical position and the position of the air conditioner is within the pre-set distance range. If yes, the relative position relationship meets the pre-set position relationship condition. When the relative position relationship indicates that the distance value between the position of Xiaoming and the position of the space is greater than the air supply distance of the current running mode of the air conditioner, the angles of the air distribution plate and the air guide plate of the air conditioner are adjusted to increase the air supply distance of the current running mode of the air conditioner, so as to match the air supply distance of the running mode of the air conditioner with the relative position relationship.

[0099] It should be noted that Figure 1 The scene architecture shown in the figure is only used to represent the scene used by the intelligent adjustment method of the regional environment, and Xiaoming, the bed and the air conditioner device are only illustrative, and the specific structure / size / shape / position / installed manner, etc. can be adaptively adjusted according to the actual scene, Figure 1 The scene architecture shown in the figure is not limited in this regard.

[0100] The application scene used by the intelligent adjustment method of the regional environment is described above, and the intelligent adjustment method and device of the regional environment are described in detail below.

[0101] Embodiment one

[0102] Please refer toFigure 2 , Figure 2 is a flowchart of a method for intelligent adjustment of a regional environment according to an embodiment of the present application. In the method, Figure 2 The method for intelligent adjustment of a regional environment can be applied to an intelligent adjustment device for a regional environment, or can be applied to a cloud server or a local server based on intelligent adjustment of a regional environment, and the present application is not limited in this regard. As shown in Figure 2 The method for intelligent adjustment of a regional environment can include the following operations:

[0103] 201. Determine the geographic location of a target user in a current regional environment.

[0104] In an embodiment of the present application, the current regional environment can be an environment in a home, an environment in an office, or a regional environment in a shopping mall, and the present application is not limited in this regard.

[0105] In an embodiment of the present application, the geographic location of the target user in the current regional environment can be determined in real time, can be determined at a predetermined time interval, or can be obtained when an instruction to intelligently adjust an air conditioner in the regional environment is detected, and the present application is not limited in this regard.

[0106] In an embodiment of the present application, the geographic location of the target user in the current regional environment can be determined by a pre-configured sensor, can be determined based on current positioning information of the user, or can be determined based on an instruction received from a remote controller of the air conditioner or voice information sent by the user, and the present application is not limited in this regard. The pre-configured sensor can be one or more of a radar sensor, a sound wave sensor, and an infrared sensor. The current positioning information of the user can be one or more of current positioning information of a smart phone of the user, current positioning information of an ID card of the user, and positioning information of a smart wearable device matching the target user. The voice information sent by the user can be one or more of information for controlling the air conditioner by the target user and information indicating a current state of the target user. For example, the information for controlling the air conditioner by the target user can be one or more of "blow away from me", "increase the wind speed", and "do not blow on me". The information indicating the current state of the target user can be one or more of "a little hot", "a little cold", and "very cold".

[0107] 202. Analyze the relative positional relationship between the target user and the air conditioner based on the geographic location and the location of the air conditioner, and obtain an analysis result.

[0108] Optionally, the analysis can include a distance value between the geographic location of the target user and the location of the air conditioner. Further optionally, the relative position relationship can further include a relative angle between the geographic location of the target user and the location of the air conditioner.

[0109] Optionally, the analysis of the relative position relationship between the target user and the air conditioner can include: inputting the relative position relationship into a pre-set position analysis model to obtain the analysis result.

[0110] 203、When the analysis result indicates that the relative position relationship satisfies the pre-set position relationship condition, the control mode of the air conditioner is determined according to the geographic location of the target user, the relative position relationship, and the air blowing distance of the current operation mode of the air conditioner.

[0111] Optionally, the method can further include: when the analysis result indicates that the relative position relationship does not satisfy the pre-set position relationship condition, sending adjustment position reminding information to the target user.

[0112] The method can further include: determining whether the target user performs an operation matched with the reminding information, and if so, determining the control mode of the air conditioner according to the geographic location of the target user after the position adjustment, the relative position relationship, and the air blowing distance of the current operation mode of the air conditioner; and if not, determining the control mode of the air conditioner according to the geographic location of the target user and the limit operation mode of the air conditioner.

[0113] When the relative position relationship indicates that the distance between the geographic location of the target user and the location of the air conditioner is greater than the air blowing distance of the current operation mode of the air conditioner, the maximum limit rotating speed, the maximum limit air distribution plate opening degree, and the maximum limit air deflector angle in the limit operation mode are determined as the control mode of the air conditioner; and when the relative position relationship indicates that the distance between the geographic location of the target user and the location of the air conditioner is less than the air blowing distance of the current operation mode of the air conditioner, the minimum limit rotating speed, the minimum limit air distribution plate opening degree, and the minimum limit air deflector angle in the limit operation mode are determined as the control mode of the air conditioner.

[0114] It should be noted that the reminding information is used to remind the target user to move to a region corresponding to the air blowing distance range value, and the determination of whether the target user performs an operation matched with the reminding information is also the determination of whether the target user has moved to the pre-set air blowing distance range value.

[0115] It can be seen that when the analysis result is used to indicate that the relative position relationship does not meet the pre-set position relationship condition, the user is reminded to move to the corresponding area within the air conditioner blowing distance range, if the user moves, the control mode of the air conditioner is determined according to the position of the user after moving and the position of the air conditioner, if the user does not move, the control mode of the air conditioner is determined according to the limit operation mode and the geographical position of the user, which can improve the intelligence of determining the control mode of the air conditioner, and can improve the accuracy of determining the control mode of the air conditioner, and can improve the comfort and experience of the user using the air conditioner.

[0116] 204、control the air conditioner to perform an operation matched with the control mode, so that the air supply distance of the air conditioner matches the relative position relationship.

[0117] In the embodiment of the application, the control mode includes at least one control parameter, wherein the control parameter can include one or more of the rotation speed of the air conditioner, the opening angle of the air conditioner, and the angle of the air deflector.

[0118] It can be seen that the embodiment Figure 2 The described intelligent adjustment method and device of the area environment can determine the geographical position of the target user in the current area environment, analyze the relative position relationship between the target user and the air conditioner according to the geographical position and the position of the air conditioner, and obtain an analysis result, when the analysis result is used to indicate that the relative position relationship meets the pre-set position relationship condition, the control mode of the air conditioner is determined according to the geographical position of the target user, the relative position relationship and the air supply distance of the current operation mode of the air conditioner, and the air conditioner is controlled to perform an operation matched with the control mode, so that the air supply distance of the air conditioner matches the relative position relationship, which can improve the accuracy of determining the control mode of the air conditioner, and can improve the accuracy of adjusting the area environment and the comfort and experience of the user using the air conditioner.

[0119] Embodiment two

[0120] Please refer to Figure 3 , Figure 3 is a flowchart of an intelligent adjustment method of an area environment disclosed by the embodiment of the application. Wherein, Figure 3 The described intelligent adjustment method of the area environment can be applied to an intelligent adjustment device of the area environment, and can also be applied to a cloud server or a local server based on the intelligent adjustment of the area environment, and the embodiment of the application does not limit it. As Figure 3 The intelligent adjustment method of the area environment can include the following operations:

[0121] 301、obtain the current running information of the air conditioner.

[0122] In the embodiment of the present application, the current operation information of the air conditioner includes a first rotating speed of the current operation mode of the air conditioner, a first air outlet opening value of the current operation mode of the air conditioner, a first opening angle of the current operation mode of the air conditioner, and a first guide angle of the current operation mode of the air conditioner.

[0123] 302, determine the geographical position of the target user in the current area environment.

[0124] 303, analyze the relative position relationship between the target user and the air conditioner according to the geographical position and the position of the air conditioner, and obtain an analysis result.

[0125] 304, when the analysis result indicates that the relative position relationship satisfies a pre-set position relationship condition, determine the control mode of the air conditioner according to the geographical position of the target user, the relative position relationship, the air supply distance of the current operation mode of the air conditioner, and the current operation information of the air conditioner.

[0126] In the embodiment of the present application, when the relative position relationship indicates that the distance between the geographical position of the target user and the position of the air conditioner is greater than the air supply distance of the current operation mode of the air conditioner, the control mode of the air conditioner is a first control mode; and when the relative position relationship indicates that the distance between the geographical position of the target user and the position of the air conditioner is less than the air supply distance of the current operation mode of the air conditioner, the control mode of the air conditioner is a second control mode.

[0127] In the embodiment of the present application, it should be noted that the first control mode and the second control mode are different control modes, and the determination processes of the first control mode and the second control mode are different.

[0128] 305, control the air conditioner to perform an operation matched with the control mode, so that the air supply distance of the air conditioner matches the relative position relationship.

[0129] In the embodiment of the present application, for other descriptions of steps 302-303 and step 305, refer to the detailed description of steps 201-202 and step 204 in the embodiment one, and the embodiment of the present application will not be repeated.

[0130] It can be seen that, in the embodiment of the present application, Figure 3The intelligent adjustment method and device of the described regional environment can obtain current running information of an air conditioner, determine a geographic position of a target user in a current regional environment, analyze a relative position relationship between the target user and the air conditioner according to the geographic position and a position of the air conditioner, obtain an analysis result, and when the analysis result indicates that the relative position relationship meets a pre-set position relationship condition, determine a control mode of the air conditioner according to the geographic position of the target user, the relative position relationship, a blowing distance of a current running mode of the air conditioner, and the current running information of the air conditioner, and control the air conditioner to perform an operation matched with the control mode, which can help improve the accuracy of determining the control mode of the air conditioner, and in turn can help improve the accuracy of adjusting the regional environment and can help improve the comfort and experience of the user using the air conditioner.

[0131] In an optional embodiment, when the relative position relationship indicates that the distance between the geographic position of the target user and the position of the air conditioner is greater than the blowing distance of the current running mode of the air conditioner, the air conditioner is controlled to perform the operation matched with the control mode, including:

[0132] According to the control mode, the first shunt plate opening angle is adjusted to a second shunt plate opening angle, where the second shunt plate opening angle is greater than the first shunt plate opening angle;

[0133] A first blowing distance value of the air conditioner is calculated according to the first rotating speed, the second shunt plate opening angle, and the first wind guide angle, and it is determined whether the first blowing distance value matches the user distance value;

[0134] When it is determined that the first blowing distance value does not match the user distance value, the first wind guide angle is adjusted to a second wind guide angle according to the control mode, where the second wind guide angle is greater than the first wind guide angle;

[0135] A second blowing distance value of the air conditioner is calculated according to the first rotating speed, the second shunt plate opening angle, and the second wind guide angle, and it is determined whether the second blowing distance value matches the user distance value;

[0136] When it is determined that the second blowing distance value matches the user distance value, the air conditioner is controlled to run in a manner of the first rotating speed, the second shunt plate opening angle, and the second wind guide angle.

[0137] In this optional embodiment, optionally, when it is determined that the first blowing distance value matches the relative position relationship, the air conditioner is controlled to run in a manner of the first rotating speed, the second shunt plate opening angle, and the first wind guide angle.

[0138] In the optional embodiment, optionally, when it is judged that the second blowing distance value does not match the relative position relationship, the second baffle opening angle is updated, and the operation of adjusting the first baffle opening angle to the second baffle opening angle according to the control mode, calculating the first blowing distance value of the air conditioner according to the first rotating speed, the second baffle opening angle and the first air guiding angle, and judging whether the first blowing distance value matches the relative position relationship is re-executed.

[0139] In the optional embodiment, optionally, judging whether the first blowing distance value matches the relative position relationship comprises judging whether the first blowing distance value matches a distance value between the geographic position of the target user and the position of the air conditioner.

[0140] It can be seen that, by implementing the optional embodiment, when the relative position relationship is used to represent that the distance between the geographic position of the target user and the position of the air conditioner is greater than the blowing distance of the current operating mode of the air conditioner, the baffle opening angle is increased to the second baffle opening angle according to the control mode, the first blowing distance value of the air conditioner is calculated according to the first rotating speed, the second baffle opening angle and the first air guiding angle, and it is judged whether the first blowing distance value matches the relative position relationship. If not, the air guiding angle of the air conditioner is increased to the second air guiding angle according to the control mode, and the second blowing distance value of the air conditioner is calculated according to the first rotating speed, the second baffle opening angle and the second air guiding angle, and it is judged whether the second blowing distance value matches the relative position relationship. If yes, the air conditioner is controlled to operate in the manner of the first rotating speed, the second baffle opening angle and the second air guiding angle. This can be conducive to improving the accuracy of controlling the air conditioner to perform the operation matching the control mode, can be conducive to improving the intelligence and accuracy of controlling the air conditioner, and thus can be conducive to improving the accuracy and intelligence of intelligently adjusting the regional environment, and further can be conducive to improving the comfort and experience of the user using the air conditioner to intelligently adjust the regional environment.

[0141] In another optional embodiment, when the relative position relationship is used to represent that the distance between the geographic position of the target user and the position of the air conditioner is less than the blowing distance of the current operating mode of the air conditioner, controlling the air conditioner to perform the operation matching the control mode comprises:

[0142] adjusting the first baffle opening angle to a third baffle opening angle according to the control mode, wherein the third baffle opening angle is less than the first baffle opening angle;

[0143] calculating a third blowing distance value of the air conditioner according to the first rotating speed, the third baffle opening angle and the first air guiding angle, and judging whether the third blowing distance value matches the user distance value;

[0144] When it is judged that the third air supply distance value does not match the user distance value, the first air guide angle is adjusted to a third air guide angle according to the control mode, where the third air guide angle is smaller than the first air guide angle;

[0145] A fourth air supply distance value of the air conditioner is calculated according to the first rotation speed, the third flow distribution plate opening angle and the third air guide angle, and it is judged whether the fourth air supply distance value matches the user distance value;

[0146] When it is judged that the fourth air supply distance value matches the user distance value, the air conditioner is controlled to operate in the manner of the first rotation speed, the third flow distribution plate opening angle and the third air guide angle.

[0147] In this optional embodiment, optionally, when it is judged that the third air supply distance value matches the relative position relationship, the air conditioner is controlled to operate in the manner of the first rotation speed, the third flow distribution plate opening angle and the first air guide angle.

[0148] In this optional embodiment, optionally, when it is judged that the fourth air supply distance value does not match the relative position relationship, the third flow distribution plate opening angle of the air conditioner is re-determined, and the operation of adjusting the first flow distribution plate opening angle to the third flow distribution plate opening angle according to the control mode, calculating the third air supply distance value of the air conditioner according to the first rotation speed, the third flow distribution plate opening angle and the first air guide angle, and judging whether the third air supply distance value matches the relative position relationship is re-executed.

[0149] It can be seen that implementing this optional embodiment can, when the relative position relationship is used to represent that the distance between the geographic position of the target user and the position of the air conditioner is smaller than the air supply distance of the current operation mode of the air conditioner, adjust the first flow distribution plate opening angle to the third flow distribution plate opening angle according to the control mode, calculate the third air supply distance value of the air conditioner according to the first rotation speed, the third flow distribution plate opening angle and the first air guide angle, judge whether the third air supply distance value matches the relative position relationship, if not, adjust the first air guide angle to the third air guide angle according to the control mode, calculate the fourth air supply distance value according to the first rotation speed, the third flow distribution plate opening angle and the third air guide angle, judge whether the fourth air supply distance value matches the relative position relationship, and if so, control the air conditioner to operate in the manner of the first rotation speed, the third flow distribution plate opening angle and the third air guide angle, which can be conducive to improving the accuracy of the air conditioner in performing operations matching the control mode, can be conducive to improving the intelligence and accuracy of the air conditioner, and thus can be conducive to improving the accuracy and intelligence of the intelligent adjustment of the regional environment, and further can be conducive to improving the comfort and experience of the user in using the air conditioner to intelligently adjust the regional environment.

[0150] In yet another optional embodiment, the control mode of the air conditioner is determined according to the geographical position of the target user, the relative position relationship, the blowing distance of the current operation mode of the air conditioner, and the current operation information of the air conditioner, including:

[0151] The initial control parameter of the air conditioner is generated according to the geographical position of the target user, the relative position relationship, and the current operation information of the air conditioner;

[0152] The initial control effect generated after the air conditioner performs an operation matching the initial control parameter is simulated according to the initial control parameter;

[0153] It is judged whether the initial control effect meets the pre-set air conditioner operation condition;

[0154] When it is judged that the initial control effect meets the pre-set air conditioner operation condition, the initial control parameter is determined as the control mode of the air conditioner;

[0155] When it is judged that the initial control effect does not meet the pre-set air conditioner operation condition, the correction control parameter is generated according to the initial control effect and the pre-set air conditioner operation condition, and the correction control parameter is determined as the control mode of the air conditioner.

[0156] In this optional embodiment, optionally, the initial control parameter of the air conditioner can include one or more of the rotation speed of the air conditioner, the outlet opening value of the air conditioner, the opening angle of the air conditioner, and the guide angle of the air conditioner.

[0157] In this optional embodiment, optionally, the initial control effect can include the initial blowing distance of the air conditioner and the initial running noise of the air conditioner. Wherein, judging whether the initial control effect meets the pre-set air conditioner operation condition can include judging whether the initial blowing distance matches the relative position relationship and judging whether the initial running noise meets the pre-set noise condition. Further optionally, judging whether the initial running noise meets the pre-set noise condition can include judging whether the difference between the initial running noise and the pre-set noise value is less than the pre-set noise threshold. Wherein, the pre-set noise threshold can be 2 decibels.

[0158] In this optional embodiment, optionally, the correction control parameter can include one or more of the rotation speed of the air conditioner, the outlet opening value of the air conditioner, the opening angle of the air conditioner, and the guide angle of the air conditioner.

[0159] It can be seen that the optional embodiment can generate the initial control parameter of the air conditioner according to the geographical position, relative position relationship of the target user and the current running information of the air conditioner, simulate the initial control effect generated after the air conditioner performs the operation matched with the initial control parameter according to the initial control parameter, determine whether the initial control effect meets the pre-set air conditioner running condition, if yes, determine the initial control parameter as the control mode of the air conditioner, if no, generate the correction control parameter according to the initial control effect and the pre-set air conditioner running condition, and determine the correction control parameter as the control mode of the air conditioner, which can be beneficial to improve the intelligence of determining the control mode of the air conditioner, and can be beneficial to improve the accuracy of determining the control mode of the air conditioner, thereby being beneficial to improve the accuracy and intelligence of intelligently adjusting the regional environment, and further being beneficial to improve the comfort and experience of the user using the air conditioner to intelligently adjust the regional environment.

[0160] In yet another optional embodiment, generating the initial control parameter of the air conditioner according to the geographical position, relative position relationship of the target user and the current running information of the air conditioner comprises:

[0161] According to the current user position and the user distance value, analyzing the control type of the air conditioner control parameter, the control type comprising the type of increasing the air supply distance of the air conditioner or the type of reducing the air supply distance of the air conditioner;

[0162] According to the control type, determining a target calculation algorithm set matched with the control type, and calculating the initial control parameter of the air conditioner according to the calculation algorithm included in the target calculation algorithm set.

[0163] In the optional embodiment, optionally, when the control type is to increase the air supply distance of the air conditioner, the target calculation algorithm set can comprise one or more of the air conditioner running noise associated algorithm, the air conditioner running speed associated algorithm; when the control type is to reduce the air supply distance of the air conditioner, the target calculation algorithm set can comprise one or more of the air conditioner temperature difference associated algorithm, the air conditioner air volume associated algorithm, the air conditioner refrigerating capacity associated algorithm.

[0164] In the optional embodiment, optionally, the air conditioner running noise associated algorithm can be:

[0165] N = f7(Z, G, D, W)

[0166] Wherein, N is the air conditioner running noise, Z is the current speed of the air conditioner, D is the distance value between the geographical position of the target user and the current position of the air conditioner, and W is the opening angle of the air conditioner shunt plate;

[0167] In the optional embodiment, optionally, the air conditioner running speed associated algorithm can be:

[0168] D = f4(Z, G, W)

[0169] Wherein, D is the distance value between the geographical position of the target user and the current position of the air conditioner, G is the opening value of the air outlet of the air conditioner, W is the opening angle of the air conditioner, and Z is the rotating speed of the air conditioner.

[0170] In this optional embodiment, the optional air conditioner temperature difference related algorithm can be:

[0171] △T = f9(Z, G, W)

[0172] Wherein, △T is the temperature difference value between the air outlet and the air inlet of the air conditioner, Z is the rotating speed of the air conditioner, G is the opening value of the air outlet of the air conditioner, and W is the opening angle of the air conditioner.

[0173] In this optional embodiment, the optional air conditioner air volume related algorithm can be:

[0174] Q = f1(Z, G, W)

[0175] Wherein, Q is the air volume of the air outlet of the air conditioner, Z is the rotating speed of the air conditioner, G is the opening value of the air outlet of the air conditioner, and W is the opening angle of the air conditioner.

[0176] In this optional embodiment, the optional air conditioner refrigeration capacity related algorithm can be:

[0177] F = Q * △T * C * ρ

[0178] Wherein, F is the refrigeration capacity of the air conditioner, Q is the air volume of the air outlet of the air conditioner, C is the specific heat capacity of air, and ρ is the air density.

[0179] In this optional embodiment, further optionally, when the control type is to increase the air supply distance of the air conditioner, according to the calculation algorithm included in the target calculation algorithm set, the initial control parameter of the air conditioner can include:

[0180] Calculate the first noise value corresponding to the first rotating speed of the air conditioner;

[0181] According to the air conditioner running speed related algorithm, calculate the second rotating speed of the air conditioner;

[0182] According to the air conditioner running noise related algorithm, calculate the second noise value of the air conditioner at the second rotating speed mode, judge whether the second rotating speed is within the rotating speed range corresponding to the preset running mode of the air conditioner and whether the difference between the second noise value and the first noise value is less than the preset noise threshold, if so, the second rotating speed is determined as the initial control parameter of the air conditioner.

[0183] In the optional embodiment, further optionally, when the control type is to reduce the air supply distance value of the air conditioner, calculating the initial control parameter of the air conditioner according to the calculation algorithm included in the target calculation algorithm set can comprise:

[0184] calculating a third rotating speed of the air conditioner according to the rotating speed related algorithm of the air conditioner;

[0185] calculating a first temperature difference value corresponding to the first rotating speed and a second temperature difference value corresponding to the third rotating speed according to the temperature difference related algorithm of the air conditioner, and calculating a first air volume value corresponding to the first rotating speed and a second air volume value corresponding to the third rotating speed according to the air volume related algorithm of the air conditioner;

[0186] calculating a first refrigerating capacity corresponding to the first rotating speed and a second refrigerating capacity corresponding to the third rotating speed according to the refrigerating capacity related algorithm of the air conditioner, judging whether the third rotating speed is in the rotating speed range corresponding to the preset operating mode of the air conditioner and whether the ratio between the second refrigerating capacity and the first refrigerating capacity is greater than or equal to the preset proportion threshold value, and if so, determining the third rotating speed as the initial control parameter of the air conditioner.

[0187] It can be seen that implementing the optional embodiment can analyze the control type of the control parameter of the air conditioner according to the current user position and the user distance value, determine the target calculation algorithm set matched with the control type, and calculate the initial control parameter of the air conditioner according to the calculation algorithm included in the target calculation algorithm set, which can be conducive to improving the accuracy of determining the initial control parameter of the air conditioner, thereby being conducive to improving the accuracy of determining the control mode of the air conditioner, further being conducive to improving the accuracy and intelligence of intelligently adjusting the regional environment, and being conducive to improving the comfort and experience of the user using the air conditioner to intelligently adjust the regional environment.

[0188] In yet another optional embodiment, generating the correction control parameter according to the initial control effect and the preset air conditioner operating condition comprises:

[0189] analyzing the difference information of each parameter between the initial control effect and the preset air conditioner operating condition, wherein the difference information of each parameter comprises a difference type and a difference degree, and all the parameters comprise one or more of the rotating speed of the air conditioner, the outlet opening degree value of the air conditioner, the opening angle of the air conditioner, and the guide angle of the air conditioner;

[0190] for each parameter, determining the influence degree of the parameter on the initial control effect according to the difference type and the difference degree corresponding to the parameter;

[0191] determining the correction calculation algorithm set matched with the control parameter of the air conditioner according to the influence degree, the difference type, and the difference degree of each parameter, and calculating the correction control parameter of the air conditioner according to the correction algorithm included in the correction calculation algorithm set.

[0192] In the optional embodiment, optionally, when the control type is to increase the air supply distance of the air conditioner, the correction calculation algorithm set can include one or more of an air conditioner operation noise associated algorithm, an air conditioner outlet opening degree value associated algorithm, and an air conditioner flow distribution plate angle associated algorithm; when the control type is to reduce the air supply distance of the air conditioner, the correction calculation algorithm set can include one or more of an air conditioner outlet opening degree value associated algorithm, an air conditioner flow distribution plate angle associated algorithm, an air conditioner temperature difference associated algorithm, an air conditioner air volume associated algorithm, and an air conditioner refrigeration capacity associated algorithm.

[0193] In the optional embodiment, optionally, the air conditioner outlet opening degree value associated algorithm can be:

[0194] D = f4(Z, G, W)

[0195] wherein D is a distance value between the geographic position of the target user and the current position of the air conditioner, Z is the rotation speed of the air conditioner, G is the outlet opening degree value of the air conditioner, and W is the flow distribution plate opening angle of the air conditioner.

[0196] In the optional embodiment, optionally, the air conditioner flow distribution plate angle associated algorithm can be:

[0197] D = f4(Z, G, W)

[0198] wherein D is a distance value between the geographic position of the target user and the current position of the air conditioner, Z is the rotation speed of the air conditioner, G is the outlet opening degree value of the air conditioner, and W is the flow distribution plate opening angle of the air conditioner.

[0199] In the optional embodiment, optionally, the air conditioner outlet opening degree value associated algorithm can be:

[0200] D = f4(Z, G, W)

[0201] wherein D is a distance value between the geographic position of the target user and the current position of the air conditioner, Z is the rotation speed of the air conditioner, G is the outlet opening degree value of the air conditioner, and W is the flow distribution plate opening angle of the air conditioner.

[0202] In the optional embodiment, optionally, the air conditioner temperature difference associated algorithm can be:

[0203] △T = f9(Z, G, W)

[0204] wherein △T is a temperature difference value between the outlet and the inlet of the air conditioner, Z is the rotation speed of the air conditioner, G is the outlet opening degree value of the air conditioner, and W is the flow distribution plate opening angle of the air conditioner.

[0205] In the optional embodiment, optionally, the air conditioner air volume associated algorithm can be:

[0206] Q = f1(Z,G,W)

[0207] Where Q is the air volume of the air conditioner, Z is the speed of the air conditioner, G is the opening value of the air outlet of the air conditioner, and W is the opening angle of the air conditioner's diffuser.

[0208] In this optional embodiment, the air conditioning cooling capacity correlation algorithm may be:

[0209] F=Q*△T*C*ρ

[0210] Where F is the cooling capacity of the air conditioner, Q is the air volume of the air conditioner, C is the specific heat capacity of the air, and ρ is the air density.

[0211] In this optional embodiment, further optionally, when the control type is to increase the air delivery distance of the air conditioner, calculating the corrected control parameters of the air conditioner according to the corrected algorithms included in the set of corrected calculation algorithms may include:

[0212] Based on the first rotation speed and the opening angle of the first splitter plate, the second air outlet opening value of the air conditioner is calculated according to the correlation algorithm of the air conditioner air outlet opening value, and the third noise value corresponding to the second air outlet opening value is calculated according to the correlation algorithm of the air conditioner operating noise.

[0213] The system determines whether the second air outlet opening value is within the speed range corresponding to the preset operating mode and whether the difference between the third noise value and the first noise value is less than a preset noise threshold. If yes, the first speed, the first diffuser opening angle, and the second air outlet opening value are determined as the correction control parameters for the air conditioner. If not, the system sets the third air outlet opening value and calculates the fourth diffuser opening angle corresponding to the third air outlet opening value according to the diffuser angle correlation algorithm. It then calculates the fourth noise value corresponding to the fourth diffuser opening angle according to the air conditioner operating noise correlation algorithm. Finally, the system determines whether the fourth diffuser opening angle is within the diffuser opening range corresponding to the preset operating mode and whether the difference between the fourth noise value and the first noise value is less than a preset noise threshold. If yes, then... The fourth splitter plate opening angle, the first rotation speed, and the first air outlet opening value are determined as the correction control parameters for the air conditioner. If not, the third air outlet opening value of the air conditioner is re-set, and the fourth splitter plate opening angle corresponding to the third air outlet opening value is calculated according to the air conditioner splitter plate angle correlation algorithm. The fourth noise value corresponding to the fourth splitter plate opening angle is calculated according to the air conditioner operating noise correlation algorithm. The operation of determining whether the fourth splitter plate opening angle is within the splitter plate opening range corresponding to the preset operating mode and whether the difference between the fourth noise value and the first noise value is less than the preset noise threshold is continued until it is determined that the fourth splitter plate opening angle is within the splitter plate opening range corresponding to the preset operating mode and the difference between the fourth noise value and the first noise value is less than the preset noise threshold is completed.

[0214] Further optionally, when it is judged that the fourth baffle opening angle is not in the baffle opening range corresponding to the preset operation mode and / or the difference between the fourth noise value and the first noise value is less than the preset noise threshold for a number of times reaching a preset target number of times, the fifth baffle opening angle of the air conditioner is determined, the fifth outlet opening degree value of the air conditioner is determined, the fifth noise value corresponding to the fifth baffle opening angle and the fourth outlet opening degree value is calculated, and the fourth rotating speed is calculated according to the air conditioner rotating speed associated algorithm. It is judged whether the fourth rotating speed is in the rotating speed range corresponding to the preset operation mode of the air conditioner and whether the difference between the fifth noise value and the first noise value is less than the preset noise threshold. If yes, the fifth baffle opening angle, the fourth outlet opening degree value and the fourth rotating speed are determined as the corrected control parameters of the air conditioner. If no, the operation of determining the fifth baffle opening angle of the air conditioner and determining the fifth outlet opening degree value of the air conditioner is re-executed, the fifth noise value corresponding to the fifth baffle opening angle and the fourth outlet opening degree value is calculated, and the fourth rotating speed is calculated according to the air conditioner rotating speed associated algorithm. It is judged whether the fourth rotating speed is in the rotating speed range corresponding to the preset operation mode of the air conditioner and whether the difference between the fifth noise value and the first noise value is less than the preset noise threshold.

[0215] Further optionally, when it is judged that the fourth rotating speed is not in the rotating speed range corresponding to the preset operation mode of the air conditioner and / or the difference between the fifth noise value and the first noise value is not less than the preset noise threshold for a number of times reaching a target number of times, the target user is sent a reminder information of adjusting the position. The reminder information is used to remind the target user to approach the air conditioner. It is judged whether the target user performs an operation matched with the reminder information. If yes, the geographic position of the target user is re-determined. If no, the last adjusted rotating speed, outlet opening degree value and baffle opening angle are determined as the corrected control parameters.

[0216] In the optional embodiment, further optionally, when the control type is to reduce the air supply distance value of the air conditioner, the corrected control parameters of the air conditioner are calculated according to the correction algorithm included in the correction calculation algorithm set, which can include:

[0217] The sixth outlet opening degree value of the air conditioner is calculated according to the air conditioner outlet opening degree value associated algorithm;

[0218] The third temperature difference value corresponding to the sixth outlet opening degree value is calculated according to the air conditioner temperature difference associated algorithm, and the third air volume value corresponding to the sixth outlet opening degree value is calculated according to the air conditioner air volume associated algorithm;

[0219] determining the seventh outlet opening degree value, and calculating a sixth deflector opening angle corresponding to the seventh outlet opening degree value according to the air conditioner deflector angle associated algorithm;

[0220] calculating a fourth temperature difference value according to the air conditioner temperature difference associated algorithm, and calculating a fourth air volume value according to the air conditioner air volume associated algorithm, and calculating a fourth refrigerating capacity according to the air conditioner refrigerating capacity associated algorithm;

[0221] determining the seventh outlet opening degree value, and calculating a sixth deflector opening angle corresponding to the seventh outlet opening degree value according to the air conditioner deflector angle associated algorithm;

[0222] Further optionally, when the number of times that the sixth deflector opening angle is determined not to be in the opening angle range corresponding to the preset running mode of the air conditioner and / or the ratio between the fourth refrigerating capacity and the first refrigerating capacity is less than the preset ratio threshold value reaches a target number of times, a seventh deflector opening angle of the air conditioner is determined and an eighth outlet opening degree value of the air conditioner is determined;

[0223] calculating a seventh rotating speed of the air conditioner according to the air conditioner running rotating speed associated algorithm;

[0224] calculating a fifth temperature difference value corresponding to the seventh rotating speed according to the air conditioner temperature difference associated algorithm, and calculating a fifth air volume value corresponding to the seventh rotating speed according to the air conditioner air volume associated algorithm;

[0225] calculating a fifth refrigerating capacity according to the air conditioner refrigerating capacity associated algorithm;

[0226] determining whether the seventh rotation speed is in the rotation speed range corresponding to the preset operation mode of the air conditioner and whether the ratio between the fifth refrigerating capacity and the first refrigerating capacity is greater than or equal to the preset proportion threshold value, and if so, determining the seventh rotation speed, the seventh opening angle of the shunt plate, and the eighth opening degree of the air outlet as the corrected control parameters of the air conditioner, and if not, re-executing the operations of determining the seventh opening angle of the shunt plate of the air conditioner and determining the eighth opening degree of the air outlet of the air conditioner, calculating the seventh rotation speed of the air conditioner according to the air conditioner rotation speed related algorithm, calculating the fifth temperature difference value corresponding to the seventh rotation speed according to the air conditioner temperature difference related algorithm, and calculating the fifth air volume value corresponding to the seventh rotation speed according to the air conditioner air volume related algorithm, calculating the fifth refrigerating capacity according to the air conditioner refrigerating capacity related algorithm, and determining whether the seventh rotation speed is in the rotation speed range corresponding to the preset operation mode of the air conditioner and whether the ratio between the fifth refrigerating capacity and the first refrigerating capacity is greater than or equal to the preset proportion threshold value.

[0227] Further optionally, when it is determined that the seventh rotation speed is not in the rotation speed range corresponding to the preset operation mode of the air conditioner and / or the ratio between the fifth refrigerating capacity and the first refrigerating capacity is less than the preset proportion threshold value for a number of times reaching a target number of times, sending a reminder information of adjusting the position to a target user, the reminder information being used to remind the target user to move away from the air conditioner, determining whether the target user performs an operation matching the reminder information, and if so, re-determining the geographic position of the target user, and if not, determining the last adjusted rotation speed, air outlet opening degree, and shunt plate opening angle as the corrected control parameters.

[0228] It can be seen that implementing the optional embodiment can analyze the difference information of each parameter between the initial control effect and the preset air conditioner operation condition, determine the influence degree of each parameter on the initial control effect according to the difference type and difference degree of the parameter corresponding to the parameter, determine the corrected calculation algorithm set matching the control parameters of the air conditioner according to the influence degree, difference type, and difference degree of each parameter, calculate the corrected control parameters of the air conditioner according to the corrected algorithms included in the corrected calculation algorithm set, which can be beneficial to improve the accuracy of determining the corrected control parameters, thereby being beneficial to improve the accuracy of determining the control mode of the air conditioner, and further being beneficial to improve the accuracy and intelligence of intelligently adjusting the regional environment, and being beneficial to improve the comfort and experience of the user using the air conditioner to intelligently adjust the regional environment.

[0229] In yet another optional embodiment, optionally, the method can further include:

[0230] determining whether the target user is in a preset sleep area according to the geographic position of the target user;

[0231] When it is judged that the target user is not in the pre-set sleep area, an operation of analyzing the relative position relationship between the target user and the air conditioner according to the geographical position and the position of the air conditioner is triggered to obtain an analysis result;

[0232] When it is judged that the target user is in the pre-set sleep area, a first distance value between the air conditioner and the bed currently occupied by the target user is determined, and a second distance value between the air conditioner and a wall in the blowing direction of the air conditioner is determined;

[0233] A distance difference value between the first distance value and the second distance value is calculated, and it is judged whether the distance difference value is greater than a pre-set target distance value;

[0234] When it is judged that the distance difference value is greater than the pre-set target distance value, the first distance value is determined as the relative position relationship between the target user and the air conditioner, and an operation of analyzing the relative position relationship between the target user and the air conditioner is triggered to obtain an analysis result;

[0235] When it is judged that the distance difference value is less than the pre-set target distance value, a target distance difference value between the first distance value and the target distance value is calculated, the target distance difference value is determined as the relative position relationship between the target user and the air conditioner, and an operation of analyzing the position relationship between the target user and the air conditioner is triggered to obtain an analysis result.

[0236] In this optional embodiment, optionally, the first distance value between the air conditioner and the bed currently occupied by the target user can be pre-acquired, or can be obtained by calculating the distance value between the current position of the target user and the current position of the air conditioner. In this way, the user distance value can be determined according to the first distance value and the second distance value after it is determined that the target user is in a sleep state, which can be beneficial to improve the efficiency of determining the user distance value, thereby being beneficial to improve the efficiency of subsequently determining the control parameter of the air conditioner, and further being beneficial to improve the efficiency of intelligently regulating the air conditioner, and being beneficial to improve the comfort and experience of the user using the air conditioner.

[0237] In this optional embodiment, optionally, the wall in the blowing direction of the air conditioner can be the wall with the largest area receiving the blowing of the air conditioner.

[0238] It can be seen that implementing this optional embodiment can be beneficial to improve the efficiency of determining the user distance value, thereby being beneficial to improve the efficiency of subsequently determining the control parameter of the air conditioner, and further being beneficial to improve the efficiency of intelligently regulating the air conditioner, and being beneficial to improve the comfort and experience of the user using the air conditioner.

[0239] Embodiment Three

[0240] Please refer to Figure 4 , Figure 4 is another structure schematic diagram of the intelligent regulation device of the area environment disclosed by the embodiments of the present application. As shown inFigure 4 As shown, the intelligent adjusting device of the area environment can include:

[0241] The determining module 401 is configured to determine a geographical position of the target user in the current area environment.

[0242] The analyzing module 402 is configured to analyze a relative position relationship between the target user and the air conditioner according to the geographical position and the position of the air conditioner, to obtain an analysis result.

[0243] The determining module 401 is further configured to, when the analysis result indicates that the relative position relationship satisfies a pre-set position relationship condition, determine a control mode of the air conditioner according to the geographical position of the target user, the relative position relationship, and a blowing distance of the air conditioner in a current operation mode of the air conditioner.

[0244] The control module 403 is configured to control the air conditioner to perform an operation matched with the control mode, so as to match the blowing distance of the air conditioner with the relative position relationship.

[0245] It can be seen that the embodiment Figure 4 The described device can determine a geographical position of a target user in a current area environment, analyze a relative position relationship between the target user and an air conditioner according to the geographical position and the position of the air conditioner, obtain an analysis result, when the analysis result indicates that the relative position relationship satisfies a pre-set position relationship condition, determine a control mode of the air conditioner according to the geographical position of the target user, the relative position relationship, and a blowing distance of the air conditioner in a current operation mode of the air conditioner, and control the air conditioner to perform an operation matched with the control mode, so as to match the blowing distance of the air conditioner with the relative position relationship. This can be conducive to improving the accuracy of determining the control mode of the air conditioner, and further can be conducive to improving the accuracy of adjusting the area environment and improving the comfort and experience of the user using the air conditioner.

[0246] In an optional embodiment, as Figure 5 The device can further include:

[0247] The obtaining module 404 is configured to obtain current operation information of the air conditioner, the current operation information of the air conditioner including a first rotating speed of the air conditioner in a current operation mode, a first air outlet opening degree value of the air conditioner in the current operation mode, a first opening angle of a flow dividing plate of the air conditioner in the current operation mode, and a first guide angle of the air conditioner in the current operation mode.

[0248] The determining module 401 determines the control mode of the air conditioner according to the geographical position of the target user, the relative position relationship, and the blowing distance of the air conditioner in the current operation mode of the air conditioner. Specifically, the determining module 401 determines the control mode of the air conditioner according to the geographical position of the target user, the relative position relationship, the blowing distance of the air conditioner in the current operation mode of the air conditioner, and the current operation information of the air conditioner.

[0249] The determining module 401 determines the control mode of the air conditioner according to the geographical position of the target user, the relative position relationship, the blowing distance of the air conditioner in the current operation mode of the air conditioner, and the current operation information of the air conditioner.

[0250] When the relative position relationship indicates that the distance between the geographical position of the target user and the position of the air conditioner is greater than the air supply distance of the current operation mode of the air conditioner, the control mode of the air conditioner is the first control mode; and when the relative position relationship indicates that the distance between the geographical position of the target user and the position of the air conditioner is less than the air supply distance of the current operation mode of the air conditioner, the control mode of the air conditioner is the second control mode.

[0251] It can be seen that the implementation Figure 5 The described device can obtain the current operation information of the air conditioner, determine the geographical position of the target user in the current area environment, analyze the relative position relationship between the target user and the air conditioner according to the geographical position and the position of the air conditioner, obtain an analysis result, and when the analysis result indicates that the relative position relationship meets the pre-set position relationship condition, determine the control mode of the air conditioner according to the geographical position of the target user, the relative position relationship, the air supply distance of the current operation mode of the air conditioner, and the current operation information of the air conditioner, and control the air conditioner to perform an operation matched with the control mode, which can be beneficial to improve the accuracy of determining the control mode of the air conditioner, and further can be beneficial to improve the accuracy of adjusting the area environment and can be beneficial to improve the comfort and experience of the user using the air conditioner.

[0252] In another optional embodiment, as Figure 5 The control module 403 controls the air conditioner to perform an operation matched with the control mode in the following manner:

[0253] When the relative position relationship indicates that the distance between the geographical position of the target user and the position of the air conditioner is greater than the air supply distance of the current operation mode of the air conditioner, the first shunt plate opening angle is adjusted to the second shunt plate opening angle according to the control mode, where the second shunt plate opening angle is greater than the first shunt plate opening angle;

[0254] The first air supply distance value of the air conditioner is calculated according to the first rotation speed, the second shunt plate opening angle, and the first air guide angle, and it is determined whether the first air supply distance value matches the relative position relationship;

[0255] When it is determined that the first air supply distance value does not match the relative position relationship, the first air guide angle is adjusted to the second air guide angle according to the control mode, where the second air guide angle is greater than the first air guide angle;

[0256] The second air supply distance value of the air conditioner is calculated according to the first rotation speed, the second shunt plate opening angle, and the second air guide angle, and it is determined whether the second air supply distance value matches the relative position relationship;

[0257] When it is judged that the second air supply distance value matches the relative position relationship, the air conditioner is controlled to operate in a manner of the first rotating speed, the second air distribution plate opening angle and the second air guide angle.

[0258] It can be seen that, by implementing the described device Figure 5 The described device can, when the relative position relationship is used to represent that the distance between the geographic position of the target user and the position of the air conditioner is greater than the air supply distance of the current operating mode of the air conditioner, increase the air distribution plate opening angle to the second air distribution plate opening angle according to the control mode, calculate a first air supply distance value of the air conditioner according to the first rotating speed, the second air distribution plate opening angle and the first air guide angle, judge whether the first air supply distance value matches the relative position relationship, if not, increase the air guide angle of the air conditioner to the second air guide angle according to the control mode, calculate a second air supply distance value of the air conditioner according to the first rotating speed, the second air distribution plate opening angle and the second air guide angle, judge whether the second air supply distance value matches the relative position relationship, and if so, control the air conditioner to operate in a manner of the first rotating speed, the second air distribution plate opening angle and the second air guide angle. This can be beneficial to improve the accuracy of controlling the air conditioner to perform operations matching the control mode, can be beneficial to improve the intelligence and accuracy of controlling the air conditioner, and thus can be beneficial to improve the accuracy and intelligence of intelligently adjusting the regional environment, and further can be beneficial to improve the comfort and experience of the user using the air conditioner to intelligently adjust the regional environment.

[0259] In yet another optional embodiment, the manner in which the control module 403 controls the air conditioner to perform operations matching the control mode specifically includes:

[0260] When the relative position relationship is used to represent that the distance between the geographic position of the target user and the position of the air conditioner is less than the air supply distance of the current operating mode of the air conditioner, the first air distribution plate opening angle is adjusted to a third air distribution plate opening angle according to the control mode, where the third air distribution plate opening angle is less than the first air distribution plate opening angle;

[0261] A third air supply distance value of the air conditioner is calculated according to the first rotating speed, the third air distribution plate opening angle and the first air guide angle, and it is judged whether the third air supply distance value matches the relative position relationship;

[0262] When it is judged that the third air supply distance value does not match the relative position relationship, the first air guide angle is adjusted to a third air guide angle according to the control mode, where the third air guide angle is less than the first air guide angle;

[0263] A fourth air supply distance value of the air conditioner is calculated according to the first rotating speed, the third air distribution plate opening angle and the third air guide angle, and it is judged whether the fourth air supply distance value matches the relative position relationship;

[0264] When it is judged that the fourth air supply distance value matches the relative position relationship, the air conditioner is controlled to operate in the manner of the first rotating speed, the third splitter opening angle and the third air guide angle.

[0265] It can be seen that, in the implementation Figure 5 The described apparatus can, when the relative position relationship is used to represent that the distance between the geographic position of the target user and the position of the air conditioner is less than the air supply distance of the current operating mode of the air conditioner, according to the control mode, reduce the first splitter opening angle to the third splitter opening angle, calculate a third air supply distance value of the air conditioner according to the first rotating speed, the third splitter opening angle and the first air guide angle, judge whether the third air supply distance value matches the relative position relationship, if not, according to the control mode, reduce the first air guide angle to the third air guide angle, calculate a fourth air supply distance value according to the first rotating speed, the third splitter opening angle and the third air guide angle, judge whether the fourth air supply distance value matches the relative position relationship, and if so, control the air conditioner to operate in the manner of the first rotating speed, the third splitter opening angle and the third air guide angle, which can be conducive to improving the accuracy of the air conditioner performing operations matching the control mode, can be conducive to improving the intelligence and accuracy of the air conditioner, and thus can be conducive to improving the accuracy and intelligence of the intelligent adjustment of the regional environment, and further can be conducive to improving the comfort and experience of the user using the air conditioner to intelligently adjust the regional environment.

[0266] In yet another optional embodiment, the determining module 401 determines the control mode of the air conditioner according to the geographic position of the target user, the relative position relationship, the air supply distance of the current operating mode of the air conditioner and the current operating information of the air conditioner, and the manner is specifically:

[0267] generating an initial control parameter of the air conditioner according to the geographic position of the target user, the relative position relationship and the current operating information of the air conditioner;

[0268] simulating an initial control effect produced after the air conditioner performs operations matching the initial control parameter according to the initial control parameter;

[0269] judging whether the initial control effect meets a pre-set air conditioner operating condition;

[0270] when it is judged that the initial control effect meets the pre-set air conditioner operating condition, determining the initial control parameter as the control mode of the air conditioner;

[0271] when it is judged that the initial control effect does not meet the pre-set air conditioner operating condition, generating a correction control parameter according to the initial control effect and the pre-set air conditioner operating condition, and determining the correction control parameter as the control mode of the air conditioner.

[0272] It can be seen that, in the implementation Figure 5The described apparatus can generate the initial control parameter of the air conditioner according to the geographical position, relative position relationship of the target user and the current running information of the air conditioner, simulate the initial control effect generated after the air conditioner performs the operation matched with the initial control parameter according to the initial control parameter, judge whether the initial control effect meets the pre-set air conditioner running condition, if yes, determine the initial control parameter as the control mode of the air conditioner, if not, generate the correction control parameter according to the initial control effect and the pre-set air conditioner running condition, and determine the correction control parameter as the control mode of the air conditioner, which can facilitate to improve the intelligence of determining the control mode of the air conditioner, and can facilitate to improve the accuracy of determining the control mode of the air conditioner, thereby facilitating to improve the accuracy and intelligence of intelligently adjusting the regional environment, and further facilitating to improve the comfort and experience of using the air conditioner to intelligently adjust the regional environment by the user.

[0273] In yet another optional embodiment, the manner in which the determining module 401 generates the initial control parameter of the air conditioner according to the geographical position, relative position relationship of the target user and the current running information of the air conditioner is specifically as follows:

[0274] According to the current user position and the user distance value, the control type of the air conditioner control parameter is analyzed, and the control type includes the type of increasing the air supply distance of the air conditioner or the type of reducing the air supply distance of the air conditioner.

[0275] According to the control type, a target calculation algorithm set matched with the control type is determined, and the initial control parameter of the air conditioner is calculated according to the calculation algorithm included in the target calculation algorithm set.

[0276] It can be seen that the implementation Figure 5 The described apparatus can analyze the control type of the air conditioner control parameter according to the current user position and the user distance value, determine a target calculation algorithm set matched with the control type, and calculate the initial control parameter of the air conditioner according to the calculation algorithm included in the target calculation algorithm set, which can facilitate to improve the accuracy of determining the initial control parameter of the air conditioner, thereby facilitating to improve the accuracy of determining the control mode of the air conditioner, further facilitating to improve the accuracy and intelligence of intelligently adjusting the regional environment, and facilitating to improve the comfort and experience of using the air conditioner to intelligently adjust the regional environment by the user.

[0277] In yet another optional embodiment, the manner in which the determining module 401 generates the correction control parameter according to the initial control effect and the pre-set air conditioner running condition is specifically as follows:

[0278] analyze difference information of each parameter between the initial control effect and the pre-set air conditioner running condition, wherein the difference information of each parameter comprises a difference type and a difference degree, and all the parameters comprise one or more of a rotation speed of the air conditioner, an outlet opening degree value of the air conditioner, a shunt plate opening angle of the air conditioner, and a guide air angle of the air conditioner;

[0279] For each parameter, determine an influence degree of the parameter on the initial control effect according to the difference type and the difference degree corresponding to the parameter;

[0280] According to the influence degree, the difference type, and the difference degree of each parameter, determine a correction calculation algorithm set matched with the control parameter of the air conditioner, and calculate the correction control parameter of the air conditioner according to a correction algorithm included in the correction calculation algorithm set.

[0281] It can be seen that the implementation Figure 5 The described device can analyze difference information of each parameter between the initial control effect and the pre-set air conditioner running condition, determine an influence degree of each parameter on the initial control effect according to the difference type and the difference degree corresponding to the parameter, and determine a correction calculation algorithm set matched with the control parameter of the air conditioner according to the influence degree, the difference type, and the difference degree of each parameter, and calculate the correction control parameter of the air conditioner according to a correction algorithm included in the correction calculation algorithm set, which can help to improve the accuracy of determining the correction control parameter, thereby helping to improve the accuracy of determining the control mode of the air conditioner, and further helping to improve the accuracy and intelligence of intelligent adjustment of the regional environment, and helping to improve the comfort and experience of the user using the air conditioner to intelligently adjust the regional environment.

[0282] Embodiment Four

[0283] Please refer to Figure 6 , Figure 6 is another structure schematic diagram of the intelligent adjustment device of the regional environment disclosed by the embodiments of the present application. As Figure 6 shown, the intelligent adjustment device of the regional environment can comprise:

[0284] a memory 501 storing executable program codes;

[0285] a processor 502 coupled with the memory 501;

[0286] The processor 502 invokes the executable program codes stored in the memory 501 to execute the steps in the intelligent adjustment method of the regional environment described in the embodiment one or the embodiment two of the present application.

[0287] Embodiment Five

[0288] The embodiment of the present application discloses a computer storage medium, which stores computer instructions, and the computer instructions are used to execute the steps in the intelligent adjustment method of the regional environment described in the embodiment one or the embodiment two of the present application.

[0289] Embodiment six

[0290] The embodiment of the present application discloses a computer program product, which comprises a non-transitory computer readable storage medium storing a computer program, and the computer program is operable to make a computer execute the steps in the intelligent adjustment method of the regional environment described in the embodiment one or the embodiment two.

[0291] The above described device embodiments are only schematic, wherein the modules described as separate components may or may not be physically separate, and the components shown as modules may or may not be physical modules, i.e., may be located in one place or distributed on multiple network modules. Part or all of the modules can be selected according to actual needs to achieve the purpose of the embodiment scheme. Those skilled in the art can understand and implement without creative labor.

[0292] Through the specific description of the above embodiments, those skilled in the art can clearly understand that each embodiment can be realized by means of software and necessary general hardware platform, and of course can also be realized by hardware. Based on such understanding, the above technical solutions can be embodied in the form of software product, and the computer software product can be stored in a computer readable storage medium, and the storage medium includes 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 disk storage, magnetic disk storage, magnetic tape storage, or any other computer readable medium capable of carrying or storing data.

[0293] It should be pointed out finally that the disclosed regional environment intelligent adjustment method and device are only the preferred embodiments of the present application, and are used for illustrating the technical solutions of the present application, but not for limiting the same. Although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that the technical solutions recorded in the foregoing embodiments can be modified, or some technical features can be replaced equivalently, and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present application.

Claims

1. A method for intelligent conditioning of a zone environment, characterized by, The method comprises: determining the geographical position of a target user in a current area environment, analyzing the relative positional relationship between the target user and the air conditioner according to the geographical position and the position of the air conditioner, and obtaining an analysis result; when the analysis result indicates that the relative positional relationship meets a pre-set positional relationship condition, determining the control mode of the air conditioner according to the geographical position of the target user, the relative positional relationship, and the air blowing distance of the current operation mode of the air conditioner; controlling the air conditioner to perform an operation matched with the control mode, so as to match the air blowing distance of the air conditioner with the relative positional relationship; obtaining the current operation information of the air conditioner, which comprises the first rotating speed of the current operation mode of the air conditioner, the first air outlet opening value of the current operation mode of the air conditioner, the first shunt plate opening angle of the current operation mode of the air conditioner, and the first air guide angle of the current operation mode of the air conditioner; the determination of the control mode of the air conditioner according to the geographical position of the target user, the relative positional relationship, and the air blowing distance of the current operation mode of the air conditioner comprises: determining the control mode of the air conditioner according to the geographical position of the target user, the relative positional relationship, the air blowing distance of the current operation mode of the air conditioner, and the current operation information of the air conditioner; wherein, when the relative positional relationship indicates that the distance between the geographical position of the target user and the position of the air conditioner is greater than the air blowing distance of the current operation mode of the air conditioner, the control mode of the air conditioner is a first control mode; and when the relative positional relationship indicates that the distance between the geographical position of the target user and the position of the air conditioner is less than the air blowing distance of the current operation mode of the air conditioner, the control mode of the air conditioner is a second control mode; when the relative positional relationship indicates that the distance between the geographical position of the target user and the position of the air conditioner is greater than the air blowing distance of the current operation mode of the air conditioner, the control of the air conditioner to perform an operation matched with the control mode comprises: adjusting the first shunt plate opening angle to a second shunt plate opening angle according to the control mode, wherein the second shunt plate opening angle is greater than the first shunt plate opening angle; calculating the first air blowing distance value of the air conditioner according to the first rotating speed, the second shunt plate opening angle, and the first air guide angle, and determining whether the first air blowing distance value matches the relative positional relationship; when it is determined that the first air blowing distance value does not match the relative positional relationship, adjusting the first air guide angle to a second air guide angle according to the control mode, wherein the second air guide angle is greater than the first air guide angle; calculating the second air blowing distance value of the air conditioner according to the first rotating speed, the second shunt plate opening angle, and the second air guide angle, and determining whether the second air blowing distance value matches the relative positional relationship; control the air conditioner to operate in a manner of the first rotating speed, the second opening angle of the distribution plate, and the second air guide angle when it is judged that the second air supply distance value matches the relative position relationship; the control mode of the air conditioner is determined according to the geographical position of the target user, the relative position relationship, the air supply distance of the current operation mode of the air conditioner, and the current operation information of the air conditioner, including: initial control parameters of the air conditioner are generated according to the geographical position of the target user, the relative position relationship, and the current operation information of the air conditioner; an initial control effect generated after the air conditioner performs an operation matching the initial control parameters is simulated according to the initial control parameters; it is judged whether the initial control effect meets a pre-set air conditioner operation condition; the initial control parameters are determined as the control mode of the air conditioner when it is judged that the initial control effect meets the pre-set air conditioner operation condition; corrective control parameters are generated according to the initial control effect and the pre-set air conditioner operation condition and the corrective control parameters are determined as the control mode of the air conditioner when it is judged that the initial control effect does not meet the pre-set air conditioner operation condition; the corrective control parameters are generated according to the initial control effect and the pre-set air conditioner operation condition, including: difference information of each parameter between the initial control effect and the pre-set air conditioner operation condition is analyzed, wherein the difference information of each parameter includes a difference type and a difference degree, and all the parameters include one or more of a rotating speed of the air conditioner, an opening degree value of an air outlet of the air conditioner, an opening angle of a distribution plate of the air conditioner, and an air guide angle of the air conditioner; an influence degree of each parameter on the initial control effect is determined according to the difference type and the difference degree of the parameter corresponding to the parameter; a corrective calculation algorithm set matching the control parameters of the air conditioner is determined according to the influence degree, the difference type, and the difference degree of each parameter, and the corrective control parameters of the air conditioner are calculated according to a corrective algorithm included in the corrective calculation algorithm set.

2. The method of claim 1, wherein, the air conditioner is controlled to perform an operation matching the control mode, including: the first opening angle of the distribution plate is adjusted to a third opening angle of the distribution plate according to the control mode, wherein the third opening angle of the distribution plate is smaller than the first opening angle of the distribution plate; it is judged whether a third air supply distance value of the air conditioner calculated according to the first rotating speed, the third opening angle of the distribution plate, and the first air guide angle matches the relative position relationship; the first air guide angle is adjusted to a third air guide angle according to the control mode when it is judged that the third air supply distance value does not match the relative position relationship, wherein the third air guide angle is smaller than the first air guide angle. Calculate a fourth air supply distance value of the air conditioner according to the first rotating speed, the third deflector opening angle and the third air guide angle, and determine whether the fourth air supply distance value matches the relative position relationship; When it is determined that the fourth air supply distance value matches the relative position relationship, control the air conditioner to operate in the manner of the first rotating speed, the third deflector opening angle and the third air guide angle.

3. The method of claim 2, wherein, The generating of the initial control parameter of the air conditioner according to the geographical position of the target user, the relative position relationship and the current operation information of the air conditioner comprises: According to the current user position and the user distance value, analyze the control type of the air conditioner control parameter, the control type comprising a type of increasing the air supply distance of the air conditioner or a type of reducing the air supply distance of the air conditioner; According to the control type, determine a target calculation algorithm set matched with the control type, and calculate the initial control parameter of the air conditioner according to a calculation algorithm included in the target calculation algorithm set.

4. A smart conditioning device for a zone environment, characterized by, The device comprises: A determination module configured to determine a geographical position of a target user in a current area environment; An analysis module configured to analyze a relative position relationship between the target user and the air conditioner according to the geographical position and a position of the air conditioner, and obtain an analysis result; The determination module is further configured to, when the analysis result indicates that the relative position relationship satisfies a pre-set position relationship condition, determine a control mode of the air conditioner according to the geographical position of the target user, the relative position relationship and an air supply distance of a current operation mode of the air conditioner; A control module configured to control the air conditioner to perform an operation matched with the control mode, so that the air supply distance of the air conditioner matches the relative position relationship; An acquisition module configured to acquire current operation information of the air conditioner, the current operation information of the air conditioner comprising a first rotating speed of a current operation mode of the air conditioner, a first air outlet opening degree value of the current operation mode of the air conditioner, a first deflector opening angle of the current operation mode of the air conditioner and a first air guide angle of the current operation mode of the air conditioner; The determination module determines the control mode of the air conditioner according to the geographical position of the target user, the relative position relationship and the air supply distance of the current operation mode of the air conditioner in the following manner: Determine the control mode of the air conditioner according to the geographical position of the target user, the relative position relationship, the air supply distance of the current operation mode of the air conditioner and the current operation information of the air conditioner; When the relative position relationship indicates that a distance between the geographical position of the target user and the position of the air conditioner is greater than the air supply distance of the current operation mode of the air conditioner, the control mode of the air conditioner is a first control mode; and when the relative position relationship indicates that the distance between the geographical position of the target user and the position of the air conditioner is less than the air supply distance of the current operation mode of the air conditioner, the control mode of the air conditioner is a second control mode; The control module controls the air conditioner to perform the operation matched with the control mode in the following manner: When the relative position relationship is used to indicate that a distance between a geographic position of the target user and a position of the air conditioner is greater than a blowing distance of a current operation mode of the air conditioner, the first diversion plate opening angle is adjusted to a second diversion plate opening angle according to the control mode, where the second diversion plate opening angle is greater than the first diversion plate opening angle; a first blowing distance value of the air conditioner is calculated according to the first rotating speed, the second diversion plate opening angle and the first air guiding angle, and it is judged whether the first blowing distance value matches the relative position relationship; when it is judged that the first blowing distance value does not match the relative position relationship, the first air guiding angle is adjusted to a second air guiding angle according to the control mode, where the second air guiding angle is greater than the first air guiding angle; a second blowing distance value of the air conditioner is calculated according to the first rotating speed, the second diversion plate opening angle and the second air guiding angle, and it is judged whether the second blowing distance value matches the relative position relationship; when it is judged that the second blowing distance value matches the relative position relationship, the air conditioner is controlled to operate in a manner of the first rotating speed, the second diversion plate opening angle and the second air guiding angle; the determination manner of the control mode of the air conditioner according to the geographic position of the target user, the relative position relationship, the blowing distance of the current operation mode of the air conditioner and the current operation information of the air conditioner is specifically: initial control parameters of the air conditioner are generated according to the geographic position of the target user, the relative position relationship and the current operation information of the air conditioner; an initial control effect generated after the air conditioner performs an operation matching the initial control parameters is simulated according to the initial control parameters; it is judged whether the initial control effect satisfies a pre-set air conditioner operation condition; when it is judged that the initial control effect satisfies the pre-set air conditioner operation condition, the initial control parameters are determined as the control mode of the air conditioner; when it is judged that the initial control effect does not satisfy the pre-set air conditioner operation condition, correction control parameters are generated according to the initial control effect and the pre-set air conditioner operation condition, and the correction control parameters are determined as the control mode of the air conditioner; the generation manner of the correction control parameters according to the initial control effect and the pre-set air conditioner operation condition is specifically: difference information of each parameter between the initial control effect and the pre-set air conditioner operation condition is analyzed, where the difference information of each parameter includes a difference type and a difference degree, and all the parameters include one or more of a rotating speed of the air conditioner, an outlet opening degree value of the air conditioner, a diversion plate opening angle of the air conditioner and an air guiding angle of the air conditioner; for each parameter, an influence degree of the parameter on the initial control effect is determined according to the difference type and the difference degree of the parameter; and the air conditioner is controlled to operate in a manner of the first rotating speed, the second diversion plate opening angle and the second air guiding angle. According to the influence degree, difference type and difference degree of each parameter, a correction calculation algorithm set matched with the control parameter of the air conditioner is determined, and a correction control parameter of the air conditioner is calculated according to a correction algorithm included in the correction calculation algorithm set.

5. A smart conditioning device for a zone environment, characterized by, The device comprises: a memory storing executable program codes; a processor coupled with the memory; the processor invokes the executable program codes stored in the memory to execute the intelligent adjustment method of the regional environment according to any one of claims 1-3.

6. A computer storage medium, characterized in that The computer storage medium stores computer instructions, which are invoked to execute the intelligent adjustment method of the regional environment according to any one of claims 1-3.

Citation Information

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