Method and device for generating air conditioning operation control parameters based on air outlet time

By determining the air outlet propagation route and operating time information of the air conditioner, generating the target additional operating time, and adjusting the air conditioner operation control parameters, the problem of inaccurate air outlet control of the air conditioner in different areas is solved, and user comfort and control accuracy are improved.

CN119103672BActive Publication Date: 2025-10-03FOSHAN VIOMI ELECTRICAL TECH
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Patent Information

Application Number
CN202411443135.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-10-03
Estimated Expiration
2044-10-15

AI Technical Summary

Technical Problem

The differences in temperature control effects of existing air conditioners in different areas result in poor user comfort and inaccurate air output control.

Method used

By determining the air outlet propagation route and operating time information of the air conditioner, and based on the air outlet effect and scene information of each propagation node, the target additional operating time is generated, and the operating control parameters of the air conditioner are adjusted to improve the accuracy of air outlet control.

Benefits of technology

It improves the accuracy of air-conditioning air outlet control and user comfort, meets users' needs for intelligent control, and enhances the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of air conditioning control technology, and discloses a method and device for generating air conditioning operation control parameters based on air flow time. The method comprises: determining an air flow propagation route for a target air conditioner, the air flow propagation route including at least one propagation node for propagating the air flow output by the target air conditioner; determining the air flow operation time information of the target air conditioner, and determining a target additional operation time for the target air conditioner for each propagation node based on the air flow operation time information; and generating target operation control parameters for the target air conditioner based on the target additional operation time corresponding to each propagation node. It can be seen that the implementation of the present invention can improve the accuracy of generating the air conditioner operation control parameters, thereby facilitating improved air flow control accuracy for the air conditioner, and further facilitating improved user comfort.
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Description

Technical Field

[0001] The present invention relates to the technical field of air conditioning control, and in particular to a method and device for generating air conditioning operation control parameters based on air outlet time. Background Art

[0002] In the existing technology, the control method of air conditioners is mainly: by controlling the operating parameters of the air conditioner, the environment of the scene it is facing is adjusted, such as adjusting the temperature, and during the operation of the air conditioner, the operating parameters are adjusted according to the user's perception of temperature changes in the scene to achieve uniformity of the user's perceived temperature.

[0003] However, in practice, it has been found that the air output from an air conditioner travels different distances in different areas of the scene it controls. This can easily lead to different temperature control results for different areas, which can easily lead to poor user comfort. For example, users may experience fluctuating temperatures when passing through different areas, or they may experience different temperatures in different directions when staying in a certain area. Therefore, it is particularly important to propose a new method for generating air conditioner operation control parameters to improve the accuracy of air conditioner air control. Summary of the Invention

[0004] The present invention provides a method and device for generating air conditioner operation control parameters based on air outlet time, which can improve the accuracy of generating air conditioner operation control parameters, help improve the accuracy of air outlet control of the air conditioner, and help improve user comfort.

[0005] In order to solve the above technical problems, the first aspect of the present invention discloses a method for generating air-conditioning operation control parameters based on air outlet time, the method comprising:

[0006] Determining an air flow propagation route of a target air conditioner, wherein the air flow propagation route includes at least one propagation node, and the propagation node is used to propagate the air flow output by the target air conditioner;

[0007] Determining the air outlet operation time information of the target air conditioner, and determining the target additional operation time of the target air conditioner for each of the propagation nodes based on the air outlet operation time information;

[0008] A target operation control parameter of the target air conditioner is generated according to the target additional operation duration corresponding to each of the propagation nodes.

[0009] As an optional embodiment, in the first aspect of the present invention, determining, based on the air outlet operation time information, the target additional operation time of the target air conditioner for each of the propagation nodes includes:

[0010] determining, based on the air outlet operation time information, a first additional operation time of the target air conditioner for each of the propagation nodes;

[0011] Obtaining scene information of the scene in which the target air conditioner is located;

[0012] Classifying all propagation nodes of the air outlet propagation route according to the scene information to obtain a classification result, the classification result including a first-category propagation node group and a second-category propagation node group, the first-category propagation node group is empty or all propagation nodes in the first-category propagation node group do not have corresponding airflow diffusion areas, the second-category propagation node group is empty or all propagation nodes in the second-category propagation node group have corresponding airflow diffusion areas, and the first-category propagation node group and the second-category propagation node group are not empty at the same time;

[0013] When the first type propagation node group is not empty, determining the first additional running time as the target additional running time of each propagation node in the first type propagation node group; and / or,

[0014] When the second type of propagation node group is not empty, the second additional running time of the propagation node is determined according to the airflow diffusion area corresponding to each propagation node in the second type of propagation node group and the first additional running time of the propagation node, as the target additional running time of the propagation node, and the second additional running time is greater than the first additional running time.

[0015] As an optional embodiment, in the first aspect of the present invention, determining, based on the air outlet operation time information, a first additional operation time of the target air conditioner for each of the propagation nodes includes:

[0016] Determining the continuous air output time and the intermittent air output time of the target air conditioner according to the air output operation time information;

[0017] Determining a first current air outlet effect of each of the propagation nodes according to the continuous air outlet time and the intermittent air outlet time, wherein the first current air outlet effect includes a first current wind speed condition and an airflow condition;

[0018] According to a first current air outlet effect of each of the propagation nodes and the determined expected air outlet effect of each of the propagation nodes, a first additional operating time of the target air conditioner for each of the propagation nodes is determined.

[0019] As an optional embodiment, in the first aspect of the present invention, determining the first additional operating time of the target air conditioner for each of the propagation nodes based on the first current air outlet effect of each of the propagation nodes and the determined expected air outlet effect of each of the propagation nodes includes:

[0020] For each of the propagation nodes, comparing the first current air outlet effect of the propagation node with the determined expected air outlet effect of the propagation node to obtain an air outlet effect comparison result of the propagation node;

[0021] When the air outlet effect comparison result of the propagation node indicates that the first current air outlet effect of the propagation node has reached the expected air outlet effect of the propagation node, determining that the propagation node does not need additional operation of the target air conditioner;

[0022] When the comparison result of the air outlet effect of the propagation node indicates that the first current air outlet effect of the propagation node has not yet reached the expected air outlet effect of the propagation node, the correspondence between the air outlet effect of the propagation node and the operating duration is determined according to the first current air outlet effect of the propagation node and the current operating duration included in the acquired current operating control parameters of the target air conditioner;

[0023] According to the difference between the first current air outlet effect of the propagation node and the expected air outlet effect of the propagation node, and the correspondence between the air outlet effect and the operating time of the propagation node, the first additional operating time of the target air conditioner for the propagation node is determined.

[0024] As an optional implementation manner, in the first aspect of the present invention, classifying all propagation nodes of the outgoing propagation route according to the scene information to obtain a classification result includes:

[0025] Dividing the scene information according to the scene information and the wind propagation route to obtain area information corresponding to each propagation node;

[0026] For each of the propagation nodes, judging whether the surrounding area of ​​the propagation node meets the target conditions for airflow diffusion control according to the area information corresponding to the propagation node;

[0027] When it is determined that the surrounding area of ​​the propagation node meets the target condition, the surrounding area of ​​the propagation node is determined as the airflow diffusion area corresponding to the propagation node;

[0028] When it is determined that the surrounding area of ​​the propagation node does not meet the target condition, determining that the propagation node does not have a corresponding airflow diffusion area;

[0029] All propagation nodes without corresponding airflow diffusion areas among all the propagation nodes are classified into a first type of propagation node group, and all propagation nodes with corresponding airflow diffusion areas among all the propagation nodes are classified into a second type of propagation node group.

[0030] As an optional embodiment, in the first aspect of the present invention, determining the second additional running time of the propagation node as the target additional running time of the propagation node based on the airflow diffusion area corresponding to each propagation node in the second type propagation node group and the first additional running time of the propagation node includes:

[0031] For each propagation node in the second type of propagation node group, determining area information of the airflow diffusion region corresponding to the propagation node according to the region information corresponding to the propagation node;

[0032] Determine a second current air outlet effect of the airflow diffusion area corresponding to the propagation node;

[0033] The second additional operation time of the propagation node is determined according to the first additional operation time of the propagation node, the area information of the airflow diffusion area, and the second current air outlet effect.

[0034] As an optional embodiment, in the first aspect of the present invention, determining the air outlet propagation route of the target air conditioner includes:

[0035] Obtain the current operating control parameters of the target air conditioner;

[0036] determining an air outlet propagation route of the target air conditioner according to the current operation control parameters;

[0037] Furthermore, generating target operation control parameters of the target air conditioner according to the target additional operation duration corresponding to each of the propagation nodes includes:

[0038] The target operation control parameters of the target air conditioner are generated according to the target additional operation duration corresponding to each of the propagation nodes and the current operation control parameters.

[0039] A second aspect of the present invention discloses a device for generating air-conditioning operation control parameters based on air-out time, the device comprising:

[0040] a determination module, configured to determine an air flow propagation route of a target air conditioner, wherein the air flow propagation route includes at least one propagation node, and the propagation node is configured to propagate the air flow output by the target air conditioner;

[0041] The determining module is further configured to determine the air outlet operation time information of the target air conditioner, and determine the target additional operation time of the target air conditioner for each of the propagation nodes based on the air outlet operation time information;

[0042] A generating module is used to generate target operating control parameters of the target air conditioner according to the target additional operating time corresponding to each of the propagation nodes.

[0043] As an optional embodiment, in the second aspect of the present invention, the determination module determines the target additional operation time of the target air conditioner for each of the propagation nodes based on the air outlet operation time information, specifically including:

[0044] determining, based on the air outlet operation time information, a first additional operation time of the target air conditioner for each of the propagation nodes;

[0045] Obtaining scene information of the scene in which the target air conditioner is located;

[0046] Classifying all propagation nodes of the air outlet propagation route according to the scene information to obtain a classification result, the classification result including a first-category propagation node group and a second-category propagation node group, the first-category propagation node group is empty or all propagation nodes in the first-category propagation node group do not have corresponding airflow diffusion areas, the second-category propagation node group is empty or all propagation nodes in the second-category propagation node group have corresponding airflow diffusion areas, and the first-category propagation node group and the second-category propagation node group are not empty at the same time;

[0047] When the first type propagation node group is not empty, determining the first additional running time as the target additional running time of each propagation node in the first type propagation node group; and / or,

[0048] When the second type of propagation node group is not empty, the second additional running time of the propagation node is determined according to the airflow diffusion area corresponding to each propagation node in the second type of propagation node group and the first additional running time of the propagation node, as the target additional running time of the propagation node, and the second additional running time is greater than the first additional running time.

[0049] As an optional embodiment, in the second aspect of the present invention, the determination module determines the first additional operation time of the target air conditioner for each of the propagation nodes based on the air outlet operation time information, specifically including:

[0050] Determining the continuous air output time and the intermittent air output time of the target air conditioner according to the air output operation time information;

[0051] Determining a first current air outlet effect of each of the propagation nodes according to the continuous air outlet time and the intermittent air outlet time, wherein the first current air outlet effect includes a first current wind speed condition and an airflow condition;

[0052] According to a first current air outlet effect of each of the propagation nodes and the determined expected air outlet effect of each of the propagation nodes, a first additional operating time of the target air conditioner for each of the propagation nodes is determined.

[0053] As an optional embodiment, in the second aspect of the present invention, the determination module determines the first additional operating time of the target air conditioner for each of the propagation nodes based on the first current air outlet effect of each of the propagation nodes and the determined expected air outlet effect of each of the propagation nodes, including:

[0054] For each of the propagation nodes, comparing the first current air outlet effect of the propagation node with the determined expected air outlet effect of the propagation node to obtain an air outlet effect comparison result of the propagation node;

[0055] When the air outlet effect comparison result of the propagation node indicates that the first current air outlet effect of the propagation node has reached the expected air outlet effect of the propagation node, determining that the propagation node does not need additional operation of the target air conditioner;

[0056] When the comparison result of the air outlet effect of the propagation node indicates that the first current air outlet effect of the propagation node has not yet reached the expected air outlet effect of the propagation node, the correspondence between the air outlet effect of the propagation node and the operating duration is determined according to the first current air outlet effect of the propagation node and the current operating duration included in the acquired current operating control parameters of the target air conditioner;

[0057] According to the difference between the first current air outlet effect of the propagation node and the expected air outlet effect of the propagation node, and the correspondence between the air outlet effect and the operating time of the propagation node, the first additional operating time of the target air conditioner for the propagation node is determined.

[0058] As an optional implementation, in the second aspect of the present invention, the determination module classifies all propagation nodes of the outgoing wind propagation route according to the scene information, and the method of obtaining the classification result specifically includes:

[0059] Dividing the scene information according to the scene information and the wind propagation route to obtain area information corresponding to each propagation node;

[0060] For each of the propagation nodes, judging whether the surrounding area of ​​the propagation node meets the target conditions for airflow diffusion control according to the area information corresponding to the propagation node;

[0061] When it is determined that the surrounding area of ​​the propagation node meets the target condition, the surrounding area of ​​the propagation node is determined as the airflow diffusion area corresponding to the propagation node;

[0062] When it is determined that the surrounding area of ​​the propagation node does not meet the target condition, determining that the propagation node does not have a corresponding airflow diffusion area;

[0063] All propagation nodes without corresponding airflow diffusion areas among all the propagation nodes are classified into a first type of propagation node group, and all propagation nodes with corresponding airflow diffusion areas among all the propagation nodes are classified into a second type of propagation node group.

[0064] As an optional embodiment, in the second aspect of the present invention, the determination module determines the second additional running time of the propagation node based on the airflow diffusion area corresponding to each propagation node in the second type propagation node group and the first additional running time of the propagation node. The method of using the second additional running time as the target additional running time of the propagation node specifically includes:

[0065] For each propagation node in the second type of propagation node group, determining area information of the airflow diffusion region corresponding to the propagation node according to the region information corresponding to the propagation node;

[0066] Determine a second current air outlet effect of the airflow diffusion area corresponding to the propagation node;

[0067] The second additional operation time of the propagation node is determined according to the first additional operation time of the propagation node, the area information of the airflow diffusion area, and the second current air outlet effect.

[0068] As an optional implementation, in the second aspect of the present invention, the manner in which the determination module determines the air outlet propagation route of the target air conditioner specifically includes:

[0069] Obtain the current operating control parameters of the target air conditioner;

[0070] determining an air outlet propagation route of the target air conditioner according to the current operation control parameters;

[0071] Furthermore, the generation module generates the target operation control parameters of the target air conditioner according to the target additional operation duration corresponding to each of the propagation nodes, specifically including:

[0072] The target operation control parameters of the target air conditioner are generated according to the target additional operation duration corresponding to each of the propagation nodes and the current operation control parameters.

[0073] A third aspect of the present invention discloses another device for generating air-conditioning operation control parameters based on air-outlet time, the device comprising:

[0074] a memory storing executable program code;

[0075] a processor coupled to the memory;

[0076] The processor calls the executable program code stored in the memory to execute the method for generating air-conditioning operation control parameters based on air outlet time disclosed in the first aspect of the present invention.

[0077] The fourth aspect of the present invention discloses a computer storage medium, which stores computer instructions. When the computer instructions are called, they are used to execute the method for generating air conditioning operation control parameters based on air outlet time disclosed in the first aspect of the present invention.

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

[0079] In an embodiment of the present invention, the air outlet propagation route of the target air conditioner is determined, and the air outlet propagation route includes at least one propagation node, and the propagation node is used to propagate the air output by the target air conditioner; the air outlet operation time information of the target air conditioner is determined, and based on the air outlet operation time information, the target additional operation time of the target air conditioner for each propagation node is determined; and based on the target additional operation time corresponding to each propagation node, the target operation control parameters of the target air conditioner are generated. It can be seen that the implementation of the present invention can determine the air outlet propagation route of the target air conditioner (the air outlet propagation route includes at least one propagation node), determine the air outlet operation time information of the target air conditioner, and based on the air outlet operation time information, determine the target additional operation time of the target air conditioner for each propagation node, and generate the target operation control parameters of the target air conditioner based on the target additional operation time corresponding to each propagation node, and can automatically determine the air outlet propagation route and air outlet operation time information of the target air conditioner, and can accurately determine the target additional operation time of the target air conditioner for each propagation node in the air outlet propagation route based on the air outlet operation time information, and can also accurately determine the target additional operation time for each propagation node. The target additional running time accurately generates the target operating control parameters of the target air conditioner, which can improve the generation accuracy of the operating control parameters of the target air conditioner, and is conducive to improving the subsequent air outlet control accuracy of the target air conditioner on the air outlet propagation route based on the accurately generated operating control parameters, and is conducive to accurately controlling the propagation distance of the target air conditioner at each propagation node on the air outlet propagation route, thereby facilitating the consistent wind speed of each propagation node based on the accurately controlled propagation distance, and further conducive to improving the comfort of users in the area where the air outlet propagation route is located, and is conducive to meeting the user's demand for intelligent control of the target air conditioner, and is also conducive to improving the user's usage experience and usage stickiness. BRIEF DESCRIPTION OF THE DRAWINGS

[0080] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.

[0081] Figure 1 This is a schematic diagram of a scenario applicable to a method for generating air-conditioning operation control parameters based on air-outlet time disclosed in an embodiment of the present invention;

[0082] Figure 2 This is a flow chart of a method for generating air-conditioning operation control parameters based on air-out time disclosed in an embodiment of the present invention;

[0083] Figure 3 This is a flow chart of another method for generating air-conditioning operation control parameters based on air-out time disclosed in an embodiment of the present invention;

[0084] Figure 4 This is a schematic structural diagram of a device for generating air-conditioning operation control parameters based on air-outlet time disclosed in an embodiment of the present invention;

[0085] Figure 5 It is a structural diagram of another device for generating air-conditioning operation control parameters based on air outlet time disclosed in an embodiment of the present invention. DETAILED DESCRIPTION

[0086] In order to enable those skilled in the art to better understand the solutions of the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0087] The terms "first," "second," and so on, in the description and claims of the present invention and the accompanying drawings are used to distinguish between different items, not to describe a specific order. Furthermore, the terms "including," "having," and any variations thereof, are intended to cover non-exclusive inclusions. For example, a process, method, apparatus, product, or end comprising a series of steps or elements is not limited to the listed steps or elements but may optionally include steps or elements not listed therein, or may optionally include other steps or elements inherent to such process, method, product, or end.

[0088] References herein to "embodiments" mean that a particular feature, structure, or characteristic described in connection with the embodiments may be included in at least one embodiment of the present invention. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor does it constitute a separate or alternative embodiment that is mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described herein may be combined with other embodiments.

[0089] The present invention discloses a method and device for generating air-conditioning operation control parameters based on air-outlet time, which can determine the air-outlet propagation route of a target air-conditioner (the air-outlet propagation route includes at least one propagation node), determine the air-outlet operation time information of the target air-conditioner, and determine the target additional operation time of the target air-conditioner for each propagation node based on the air-outlet operation time information. According to the target additional operation time corresponding to each propagation node, the target operation control parameters of the target air-conditioner are generated, which can automatically determine the air-outlet propagation route and air-outlet operation time information of the target air-conditioner, and can accurately determine the target additional operation time of the target air-conditioner for each propagation node in the air-outlet propagation route based on the air-outlet operation time information. Accurately determining the target additional operating time for each propagation node and accurately generating the target operating control parameters for the target air conditioner can improve the accuracy of generating the target air conditioner's operating control parameters, which is beneficial for improving the accuracy of subsequent target air conditioner's air outlet control on the air outlet propagation route based on the accurately generated operating control parameters, and is beneficial for accurately controlling the propagation distance of the target air conditioner at each propagation node on the air outlet propagation route, thereby facilitating consistent wind speed at each propagation node based on the accurately controlled propagation distance, thereby improving the comfort of users in the area where the air outlet propagation route is located, and is beneficial for meeting users' needs for intelligent control of the target air conditioner, and is beneficial for improving users' user experience and usage stickiness. Detailed explanations are given below.

[0090] In order to better understand the method and device for generating air-conditioning operation control parameters based on air-outlet time described in the present invention, firstly, a home scene to which the method for generating air-conditioning operation control parameters based on air-outlet time is applicable is described. Specifically, the scene diagram of the home scene can be as follows: Figure 1 As shown, Figure 1 Schematic diagram of a scenario applicable to a method for generating air-conditioning operation control parameters based on air-outlet time disclosed in an embodiment of the present invention, such as Figure 1 As shown, the home scene includes a living room area, which is equipped with an air conditioner and a sofa. In addition, the home scene also includes a bedroom area and a kitchen area, where a bed is placed in the bedroom area and a refrigerator, a stove and pots are placed in the kitchen area.

[0091] It should be noted that Figure 1 The scenario diagram shown is only for illustrating one scenario to which the method and device for generating air-conditioning operation control parameters based on air-outlet time are applicable, and is not intended to limit other scenarios to which the method and device for generating air-conditioning operation control parameters based on air-outlet time are applicable, and Figure 1 The air conditioning involved, Figure 1 The scene diagram shown does not limit the shape, size and location of the air conditioner, and Figure 1There are no restrictions on the existence, form, and area of ​​existence of related objects such as beds, pots and pans, stoves, refrigerators, and sofas.

[0092] Example 1

[0093] See also Figure 2 , Figure 2 This is a flow chart of a method for generating air-conditioning operation control parameters based on air-out time disclosed in an embodiment of the present invention. Figure 2 The method for generating air-conditioning operation control parameters based on air-outlet time described above can be applied to a device for generating air-conditioning operation control parameters based on air-outlet time, wherein the device may include a generating device or a generating server, wherein the generating server may include a cloud server or a local server, and the embodiment of the present invention does not limit this. Figure 2 As shown, the method for generating air-conditioning operation control parameters based on air-outlet time may include the following operations:

[0094] 101. Determine the air outlet route of the target air conditioner.

[0095] In an embodiment of the present invention, the number of airflow propagation routes of a target air conditioner may be one or more. Each airflow propagation route includes at least one propagation node, and the propagation node is used to propagate the airflow output by the target air conditioner. Optionally, each propagation node may correspond to at least one airflow propagation route, which is not limited in the embodiment of the present invention.

[0096] For example, assume that there are wind propagation route A, wind propagation route B and wind propagation route C, and wind propagation route A includes propagation node a, propagation node b, propagation node c and propagation node d, wind propagation route B includes propagation node a and propagation node d, and wind propagation route C includes propagation node d. At this time, propagation node a belongs to wind propagation route A and wind propagation route B at the same time, propagation node b belongs to wind propagation route A, propagation node c belongs to wind propagation route A, and propagation node d belongs to wind propagation route A, wind propagation route B and wind propagation route C.

[0097] 102. Determine the air outlet operation time information of the target air conditioner.

[0098] In an embodiment of the present invention, optionally, the air outlet operation time information of the target air conditioner may include at least one air outlet operation duration of the target air conditioner, and may also include the starting air outlet operation time of each air outlet operation duration and the ending air outlet operation time of each air outlet operation time period.

[0099] 103. Determine a target additional operating time of the target air conditioner for each propagation node based on the air outlet operating time information.

[0100] In an embodiment of the present invention, the target additional operation duration can be used to indicate the duration for which the target air conditioner needs to continue to operate after the last air outlet operation duration. Optionally, the target additional operation duration can be zero or any time value greater than zero. Specifically, when the target additional operation duration of a certain propagation node is zero, it can be used to indicate that the propagation node does not need additional operation of the target air conditioner; when the target additional operation duration of a certain propagation node is not zero, it can be used to indicate that the propagation node needs additional operation of the target air conditioner, which is not limited in the embodiment of the present invention.

[0101] Optionally, the current air outlet effect of each propagation node can be determined based on the air outlet operation time information; then the target additional operation time of the propagation node can be determined based on the current air outlet effect of the propagation node and the expected air outlet effect of the propagation node, or the regional temperature control result corresponding to the propagation node can be determined based on the current air outlet effect of the propagation node, and the target additional operation time of the propagation node can be determined based on the regional temperature control result. Among them, the expected air outlet effect of each propagation node can be obtained by communicating with the wireless communication module (for example: Wi-Fi module) built into the target air conditioner and the smart home platform (the smart home platform can be a platform where users upload their smart control requirements for various smart home devices, for example: smart temperature adjustment requirements for smart air conditioners), or it can be obtained by recognizing the voice command triggered by the user through the voice module built into the target air conditioner, which is not limited in the embodiments of the present invention.

[0102] 104. Generate target operation control parameters of the target air conditioner according to the target additional operation duration corresponding to each propagation node.

[0103] It can be seen that implementation Figure 2The described method for generating air-conditioning operation control parameters based on air outlet time can determine the air outlet propagation route of the target air-conditioner (the air outlet propagation route includes at least one propagation node), determine the air outlet operation time information of the target air-conditioner, and determine the target additional operation time of the target air-conditioner for each propagation node based on the air outlet operation time information. According to the target additional operation time corresponding to each propagation node, the target operation control parameters of the target air-conditioner are generated, and the air outlet propagation route and air outlet operation time information of the target air-conditioner are automatically determined, and the current air outlet effect of the target air-conditioner for each propagation node in the air outlet propagation route can be accurately determined based on the air outlet operation time information, which is conducive to improving the accuracy of determining the current air outlet effect of each propagation node, and can quickly and accurately determine the target additional operation time for the propagation node through the current air outlet effect of each propagation node and its expected air outlet effect, or through the current air outlet effect of each propagation node The regional temperature control result brought about by the result can accurately and reliably determine the target additional operating time for the propagation node, which is conducive to improving the flexibility and diversity of determining the target additional operating time for each propagation node, and can also accurately generate the target operating control parameters of the target air conditioner based on the accurate determination of the target additional operating time for each propagation node, which can improve the accuracy and flexibility of generating the operating control parameters of the target air conditioner, and is conducive to improving the subsequent air outlet control accuracy of the air outlet propagation route by the target air conditioner based on the accurately generated operating control parameters, and is conducive to accurately controlling the propagation distance of the target air conditioner at each propagation node in the air outlet propagation route, thereby facilitating the realization of consistent wind speed at each propagation node based on the accurately controlled propagation distance, and further conducive to improving the comfort of users in the area where the air outlet propagation route is located, and is conducive to meeting the user's demand for intelligent control of the target air conditioner, and is also conducive to improving the user's usage experience and usage stickiness.

[0104] In an optional embodiment, determining the air outlet propagation route of the target air conditioner in step 101 may include:

[0105] Obtain the current operating control parameters of the target air conditioner;

[0106] Determine the air outlet propagation route of the target air conditioner based on the current operating control parameters.

[0107] In an embodiment of the present invention, optionally, the current operating control parameters of the target air conditioner may include one or more combinations of the current air outlet temperature of the target air conditioner, the current air outlet direction of the target air conditioner, the current air outlet angle in the corresponding air outlet direction, the current air outlet speed in the corresponding air outlet direction, the current air outlet distance in the corresponding air outlet direction, and the current air outlet volume in the corresponding air outlet direction, which is not limited in the embodiment of the present invention.

[0108] Specifically, determining the air outlet propagation route of the target air conditioner based on the current operation control parameters may include:

[0109] Obtaining spatial information of the scene in which the target air conditioner is located, and determining the impact of the scene on the air output parameters of the target air conditioner from the spatial information;

[0110] According to the air outlet parameter influence information, the influence degree of the air outlet parameter influence information on the current operation control parameters is analyzed, and according to the influence degree of the air outlet parameter influence information on the current operation control parameters and the current operation control parameters, the air outlet propagation route of the target air conditioner is determined.

[0111] Optionally, the air outlet parameter influencing information may include one or more combinations of the spatial layout information of the scene contained in the spatial information, the shape of the scene, and the wall material of the scene, etc., which is not limited in the embodiment of the present invention. For example, assuming that there are multiple target objects (such as other household appliances other than the target air conditioner) that can block the wind or change the wind direction in the scene, the air output by the target air conditioner is likely to change when it reaches the target object, thereby forming a new air outlet propagation route of the target air conditioner; assuming that the corner point of the scene is exactly the windward point, the air output by the target air conditioner is also likely to deviate from the wind direction when it reaches the corner point; assuming that the wall of the scene is a non-smooth wall, the air output by the target air conditioner may be diffusely reflected when it reaches the wall, thereby also easily causing the air outlet direction to deviate.

[0112] It can be seen that this optional embodiment can obtain the current operating control parameters of the target air conditioner, and determine the air outlet propagation route of the target air conditioner based on the current operating control parameters. It can quickly and accurately determine the air outlet propagation route of the target air conditioner based on the acquired current operating control parameters of the target air conditioner, or, based on the determined information on the impact of the scene on the air outlet parameters of the target air conditioner, analyze the degree of impact of the air outlet parameter impact information on the current operating control parameters, and then determine the air outlet propagation route of the target air conditioner based on the impact degree and the current operating control parameters. It can accurately determine the degree of impact of the air outlet parameter impact information on the current operating control parameters, so that it can accurately and reliably determine the air outlet propagation route of the target air conditioner based on the accurately determined impact degree and the current operating control parameters, which is conducive to improving the flexibility and diversity of determining the air outlet propagation route for the target air conditioner, and further conducive to improving the accuracy of subsequent determination of the target additional operating time based on the accurately determined air outlet propagation route.

[0113] In this optional embodiment, as an optional implementation, the step 104 of generating the target operation control parameters of the target air conditioner according to the target additional operation duration corresponding to each propagation node may include:

[0114] The target operation control parameters of the target air conditioner are generated according to the target additional operation time corresponding to each propagation node and the current operation control parameters.

[0115] In an embodiment of the present invention, specifically, for each propagation node, when the target additional operating time corresponding to the propagation node is zero, the current operating control parameter is determined as the target operating control parameter of the target air conditioner; when the target additional operating time corresponding to the propagation node is not zero, the parameter update operation is performed on the current operating time control parameter included in the current operating control parameter according to the target additional operating time corresponding to the propagation node to obtain the target operating control parameter of the target air conditioner.

[0116] It can be seen that this optional implementation method can generate the target operating control parameters of the target air conditioner based on the target additional operating time corresponding to each propagation node and the current operating control parameters. It can flexibly and accurately generate the target operating control parameters of the target air conditioner based on the current operating control parameters according to the target additional operating time with diversified values.

[0117] Example 2

[0118] See also Figure 3 , Figure 3 This is a flow chart of a method for generating air-conditioning operation control parameters based on air-out time disclosed in an embodiment of the present invention. Figure 3 The method for generating air-conditioning operation control parameters based on air-outlet time described above can be applied to a device for generating air-conditioning operation control parameters based on air-outlet time, wherein the device may include a generating device or a generating server, wherein the generating server may include a cloud server or a local server, and the embodiment of the present invention does not limit this. Figure 3 As shown, the method for generating air-conditioning operation control parameters based on air-outlet time may include the following operations:

[0119] 201. Determine the air outlet route of the target air conditioner.

[0120] 202. Determine the air outlet operation time information of the target air conditioner.

[0121] 203. Determine a first additional operation time of the target air conditioner for each propagation node according to the air outlet operation time information.

[0122] 204. Obtain scene information of the scene where the target air conditioner is located.

[0123] 205. Classify all propagation nodes of the wind propagation route according to the scene information to obtain a classification result.

[0124] In an embodiment of the present invention, optionally, there is no order between step 204-step 205 and step 202-step 204, that is, any step in step 204-step 205 may occur before any step in step 202-step 204, or may occur after any step in step 202-step 204, or may occur simultaneously with any step in step 202-step 204, which is not limited in the embodiment of the present invention.

[0125] In an embodiment of the present invention, the classification result may include a first-category propagation node group and a second-category propagation node group, wherein the first-category propagation node group is empty or none of the propagation nodes within the first-category propagation node group have corresponding airflow diffusion regions, and the second-category propagation node group is empty or none of the propagation nodes within the second-category propagation node group have corresponding airflow diffusion regions, and the first-category propagation node group and the second-category propagation node group are not empty at the same time. For example, if the first-category propagation node group is empty, then the second-category propagation node group is not empty; if the second-category propagation node group is not empty, then the first-category propagation node group is empty.

[0126] In the embodiment of the present invention, when the first type propagation node group is not empty, step 206 may be triggered; and / or, when the second type propagation node group is not empty, step 207 may be triggered. Specifically, when the first type propagation node group is not empty and the second type propagation node group is empty, only step 206 may be triggered; when the first type propagation node group is empty and the second type propagation node group is not empty, only step 207 may be triggered; when the first type propagation node group is not empty and the second type propagation node group is not empty, as shown in FIG. Figure 3 As shown, step 206 and step 207 may be triggered to be executed.

[0127] 206. Determine a first additional runtime as a target additional runtime for each propagation node in the first type of propagation node group.

[0128] 207. Determine a second additional running time of the propagation node according to the airflow diffusion area corresponding to each propagation node in the second type propagation node group and the first additional running time of the propagation node as the target additional running time of the propagation node.

[0129] In this embodiment of the present invention, the second additional runtime is greater than the first additional runtime. Specifically, for each propagation node in the first type propagation node group, the target additional runtime of the propagation node is the first additional runtime of the propagation node; and for each propagation node in the second type propagation node group, the target additional runtime of the propagation node is the second additional runtime of the propagation node.

[0130] 208. Generate target operation control parameters of the target air conditioner according to the target additional operation duration corresponding to each propagation node.

[0131] In the embodiment of the present invention, for other descriptions of steps 201 to 203 and step 208, please refer to the detailed description of steps 101 to 104 in the first embodiment, which will not be repeated in the embodiment of the present invention.

[0132] It can be seen that implementation Figure 3The described method for generating air-conditioning operation control parameters based on air outlet time can determine the air outlet propagation route of the target air-conditioner (the air outlet propagation route includes at least one propagation node), determine the air outlet operation time information of the target air-conditioner, and determine the target additional operation time of the target air-conditioner for each propagation node based on the air outlet operation time information. According to the target additional operation time corresponding to each propagation node, the target operation control parameters of the target air-conditioner are generated, and the air outlet propagation route and air outlet operation time information of the target air-conditioner are automatically determined, and the current air outlet effect of the target air-conditioner for each propagation node in the air outlet propagation route can be accurately determined based on the air outlet operation time information, which is conducive to improving the accuracy of determining the current air outlet effect of each propagation node, and can quickly and accurately determine the target additional operation time for the propagation node through the current air outlet effect of each propagation node and its expected air outlet effect, or through the current air outlet effect of each propagation node The regional temperature control result brought about by the result can accurately and reliably determine the target additional operating time for the propagation node, which is conducive to improving the flexibility and diversity of determining the target additional operating time for each propagation node, and can also accurately generate the target operating control parameters of the target air conditioner based on the accurate determination of the target additional operating time for each propagation node, which can improve the accuracy and flexibility of generating the operating control parameters of the target air conditioner, and is conducive to improving the subsequent air outlet control accuracy of the air outlet propagation route by the target air conditioner based on the accurately generated operating control parameters, and is conducive to accurately controlling the propagation distance of the target air conditioner at each propagation node in the air outlet propagation route, thereby facilitating the realization of consistent wind speed at each propagation node based on the accurately controlled propagation distance, and further conducive to improving the comfort of users in the area where the air outlet propagation route is located, and is conducive to meeting the user's demand for intelligent control of the target air conditioner, and is also conducive to improving the user's usage experience and usage stickiness.In addition, the first additional operation time of the target air conditioner for each propagation node can be determined based on the air outlet operation time information, and the first additional operation time of the target air conditioner for each propagation node can be accurately determined based on the air outlet operation time information. All propagation nodes in the air outlet propagation route are classified according to the acquired scene information of the scene in which the target air conditioner is located to obtain a classification result (the classification result includes a first-category propagation node group and a second-category propagation node group), which can improve the classification accuracy and speed of the propagation node. When the first-category propagation node group is not empty, the first additional operation time is determined as the target additional operation time for each propagation node in the first-category propagation node group, which can improve the efficiency and speed of determining the target additional operation time; and / or, when the second-category propagation node group is not empty, the second additional operation time of the propagation node is determined based on the airflow diffusion area corresponding to each propagation node in the second-category propagation node group and the first additional operation time of the propagation node, as the target additional operation time for the propagation node, which can improve the accuracy and reliability of determining the target additional operation time, and is conducive to improving the diversity and flexibility of determining the target additional operation time based on the diversity of classification results.

[0133] In an optional embodiment, the step 203 of determining the first additional operating time of the target air conditioner for each propagation node according to the air outlet operating time information may include:

[0134] Determine the continuous air-discharging time and the intermittent air-discharging time of the target air-conditioner according to the air-discharging operation time information;

[0135] Determine the first current air output effect of each propagation node based on the continuous air output time and the intermittent air output time;

[0136] According to a first current air outlet effect of each propagation node and the determined expected air outlet effect of each propagation node, a first additional operation time of the target air conditioner for each propagation node is determined.

[0137] In the embodiment of the present invention, specifically, determining the continuous air output time and the intermittent air output time of the target air conditioner according to the air output operation time information may include:

[0138] Determine the duration of each air outlet operation time according to the start air outlet operation time of each air outlet operation time and the end air outlet operation time of each air outlet operation time included in the air outlet operation time information;

[0139] The air outlet operating time lengths greater than or equal to the preset time length are filtered out from all the air outlet operating time lengths, and all the air outlet operating time lengths greater than or equal to the preset time length are classified as the continuous air outlet time of the target air conditioner, and all the air outlet operating time lengths less than the preset time length are classified as the intermittent air outlet time of the target air conditioner.

[0140] In the embodiment of the present invention, the first current wind effect includes the first current wind speed and airflow. Specifically, the first current wind effect of each propagation node is determined based on the continuous wind time and the intermittent wind time, which may include:

[0141] Based on the continuous air flow time, the intermittent air flow time, and the distance between each propagation node and the target air conditioner, the propagation distance of the air output from the air outlet of the target air conditioner in each propagation node is determined as the air flow propagation distance of the target air conditioner for that propagation node;

[0142] According to the air outlet propagation distance of the target air conditioner for the propagation node, a current environmental change parameter of the propagation node under the air outlet control of the target air conditioner is determined as a first current air outlet effect of the propagation node.

[0143] It can be seen that this optional embodiment can determine the continuous air outlet time and the intermittent air outlet time of the target air conditioner based on the air outlet operation time information, can accurately determine the continuous air outlet time and the intermittent air outlet time of the target air conditioner, and determine the first current air outlet effect of each propagation node based on the continuous air outlet time and the intermittent air outlet time, can accurately determine the first current air outlet effect of each propagation node, and determine the first additional operation time of the target air conditioner for each propagation node based on the first current air outlet effect of each propagation node and the determined expected air outlet effect of each propagation node, which can improve the accuracy and reliability of determining the first additional operation time.

[0144] In this optional embodiment, as an optional implementation manner, determining the first additional operating time of the target air conditioner for each propagation node based on the first current air output effect of each propagation node and the determined expected air output effect of each propagation node may include:

[0145] For each propagation node, compare the first current air outlet effect of the propagation node with the determined expected air outlet effect of the propagation node to obtain an air outlet effect comparison result of the propagation node;

[0146] When the air outlet effect comparison result of the propagation node indicates that the first current air outlet effect of the propagation node has reached the expected air outlet effect of the propagation node, determining that the propagation node does not need additional operation of the target air conditioner;

[0147] When the comparison result of the air outlet effect of the propagation node indicates that the first current air outlet effect of the propagation node has not yet reached the expected air outlet effect of the propagation node, the correspondence between the air outlet effect of the propagation node and the operating duration is determined according to the first current air outlet effect of the propagation node and the current operating duration included in the acquired current operating control parameters of the target air conditioner;

[0148] According to the difference between the first current air outlet effect of the propagation node and the expected air outlet effect of the propagation node, and the correspondence between the air outlet effect and the operating time of the propagation node, the first additional operating time of the target air conditioner for the propagation node is determined.

[0149] In an embodiment of the present invention, the expected wind outlet effect may include expected wind speed conditions and airflow conditions, and the expected wind outlet effect of each propagation node may be the wind outlet effect that the user expects to achieve for each propagation node. The expected wind outlet effect may be determined based on the user's regional environmental control requirements for the area where each propagation node is located, wherein the user has corresponding regional environmental control requirements for the area where each propagation node included in the scene where the target air conditioner is located, for example: for the living room area, the user needs the air conditioner to adjust its temperature to 22°C; for the bedroom area, the user needs the air conditioner to adjust its temperature to 24°C; for the kitchen area, the user needs the air conditioner to adjust its temperature to 18°C.

[0150] It can be seen that this optional embodiment can compare the first current air outlet effect of each propagation node and the determined expected air outlet effect of the propagation node to obtain the air outlet effect comparison result of the propagation node, which can improve the accuracy of the determination of the air outlet effect comparison result, and when the air outlet effect comparison result of the propagation node indicates that the first current air outlet effect of the propagation node has reached the expected air outlet effect of the propagation node, it is determined that the propagation node does not need additional operation of the target air conditioner, that is, it is determined that the first additional operation time of the target air conditioner for the propagation node is zero, which can improve the speed and efficiency of determining the first additional operation time, and when the air outlet effect comparison result of the propagation node indicates that the first current air outlet effect of the propagation node has not yet reached the expected air outlet effect of the propagation node, Based on the first current air outlet effect of the propagation node and the current operating duration included in the current operating control parameters of the acquired target air conditioner, the correspondence between the air outlet effect and the operating duration of the propagation node is determined, which can improve the accuracy of determining the correspondence between the air outlet effect and the operating duration. Subsequently, based on the difference between the first current air outlet effect of the propagation node and the expected air outlet effect of the propagation node, and the correspondence between the air outlet effect and the operating duration of the propagation node, the first additional operating duration of the target air conditioner for the propagation node is determined, which can improve the accuracy and reliability of determining the first additional operating duration, and can improve the diversity and flexibility of the determination method of the first additional operating duration based on the diverse air outlet effect comparison results of different propagation nodes.

[0151] In another optional embodiment, the above step 205 classifies all propagation nodes of the outgoing wind propagation route according to the scene information to obtain the classification result, which may include:

[0152] According to the scene information and the wind propagation route, the scene information is divided to obtain the area information corresponding to each propagation node;

[0153] For each propagation node, based on the area information corresponding to the propagation node, determine whether the surrounding area of ​​the propagation node meets the target conditions for airflow diffusion control;

[0154] When it is determined that the surrounding area of ​​the propagation node meets the target condition, the surrounding area of ​​the propagation node is determined as the airflow diffusion area corresponding to the propagation node;

[0155] When it is determined that the surrounding area of ​​the propagation node does not meet the target condition, determining that the propagation node does not have a corresponding airflow diffusion area;

[0156] All propagation nodes without corresponding airflow diffusion areas among all propagation nodes are classified into a first type of propagation node group, and all propagation nodes with corresponding airflow diffusion areas among all propagation nodes are classified into a second type of propagation node group.

[0157] In an embodiment of the present invention, optionally, the area information corresponding to each propagation node may include one or more combinations of the area size of the area corresponding to each propagation node, the area shape of the area, the area area of ​​the area, the device information of the area (such as the type and quantity of smart home appliances, etc.) and the air circulation information of the area, etc., which is not limited in the embodiment of the present invention.

[0158] In an embodiment of the present invention, the target condition for airflow diffusion control can be used to indicate whether the surrounding area of ​​the corresponding propagation node meets the requirements for target air conditioning control. Specifically, for each propagation node, based on the area information corresponding to the propagation node, determining whether the surrounding area of ​​the propagation node meets the target condition for airflow diffusion control may include:

[0159] According to the area information corresponding to the propagation node, it is determined whether the surrounding area of ​​the propagation node meets the preset temperature control requirements;

[0160] When it is determined that the surrounding area of ​​the propagation node does not have a temperature adjustment requirement, determining that the surrounding area of ​​the propagation node does not meet the target condition for performing airflow diffusion control;

[0161] When it is determined that the surrounding area of ​​the propagation node has a temperature control demand, based on the area information corresponding to the propagation node and the obtained air outlet facing area of ​​the target air conditioner, it is determined whether there is a surrounding area that is not in the air outlet facing area among all the surrounding areas of the propagation node;

[0162] When it is determined that there is a surrounding area that is not located in the air outlet facing area among all the surrounding areas of the propagation node, determining that the surrounding area of ​​the propagation node meets the target condition for performing airflow diffusion control;

[0163] When it is determined that all surrounding areas of the propagation node are in the wind outlet facing area, it is determined that the surrounding areas of the propagation node do not meet the target conditions for performing airflow diffusion control.

[0164] It can be seen that this optional implementation method can divide the scene information according to the scene information and the wind propagation route to obtain the area information corresponding to each propagation node, which can improve the accuracy and reliability of the division of the area information corresponding to each propagation node, and based on the area information corresponding to each propagation node, judge whether the surrounding area of ​​the propagation node meets the target conditions for airflow diffusion control, and obtain a judgment result. When the judgment result is yes, the surrounding area of ​​the propagation node is determined as the airflow diffusion area corresponding to the propagation node. When the judgment result is no, it is determined that the propagation node does not have a corresponding airflow diffusion area, which can improve the accuracy and reliability of determining whether each propagation node has a corresponding airflow diffusion area. Subsequently, all propagation nodes that do not have corresponding airflow diffusion areas among all propagation nodes are classified into the first type of propagation node group, and all propagation nodes that have corresponding airflow diffusion areas among all propagation nodes are classified into the second type of propagation node group, which can improve the classification accuracy and reliability of all propagation nodes through airflow diffusion areas.

[0165] In yet another optional embodiment, the above step 207, based on the airflow diffusion area corresponding to each propagation node in the second type propagation node group and the first additional running time of the propagation node, determines the second additional running time of the propagation node as the target additional running time of the propagation node, which may include:

[0166] For each propagation node in the second type of propagation node group, determining the area information of the airflow diffusion region corresponding to the propagation node according to the region information corresponding to the propagation node;

[0167] Determine a second current air outlet effect of the airflow diffusion area corresponding to the propagation node;

[0168] The second additional operation time of the propagation node is determined according to the first additional operation time of the propagation node, the area information of the airflow diffusion region, and the second current air outlet effect.

[0169] In an embodiment of the present invention, the second current airflow effect of the airflow diffusion area corresponding to each propagation node can be obtained by diffusing the first current airflow effect of each propagation node within the airflow diffusion area corresponding to each propagation node. Specifically, based on the area information of the airflow diffusion area corresponding to each propagation node, the degree of diffusion of the first current airflow effect of the propagation node by the airflow diffusion area can be analyzed, and the second current airflow effect of the airflow diffusion area corresponding to the propagation node can be determined based on the diffusion degree and the first current airflow effect of the propagation node.

[0170] It can be seen that this optional embodiment can determine the area information of the airflow diffusion area corresponding to each propagation node in the second type of propagation node group based on the area information corresponding to the propagation node, thereby improving the accuracy of determining the airflow diffusion area and thus improving the accuracy of determining the area information of the airflow diffusion area, and automatically determine the second current wind output effect of the airflow diffusion area corresponding to the propagation node, and determine the second additional operation time of the propagation node based on the first additional operation time of the propagation node, the area information of the airflow diffusion area and the second current wind output effect, thereby improving the accuracy and reliability of determining the second additional operation time of each propagation node in the second type of propagation node group.

[0171] Example 3

[0172] See also Figure 4 , Figure 4 This is a schematic diagram of the structure of a device for generating air-conditioning operation control parameters based on air-out time disclosed in an embodiment of the present invention. Figure 4 The device for generating the air-conditioning operation control parameters based on the air-out time may include a generating device or a generating server, wherein the generating server may include a cloud server or a local server, which is not limited in the embodiment of the present invention. Figure 4 As shown, the device for generating the air-conditioning operation control parameter based on the air outlet time may include:

[0173] The determination module 301 is used to determine the air outlet propagation route of the target air conditioner. The air outlet propagation route includes at least one propagation node, and the propagation node is used to propagate the air outlet output by the target air conditioner.

[0174] The determination module 301 is further configured to determine the air outlet operation time information of the target air conditioner, and determine the target additional operation time of the target air conditioner for each propagation node based on the air outlet operation time information.

[0175] The generating module 302 is configured to generate target operating control parameters of a target air conditioner according to the target additional operating time corresponding to each propagation node.

[0176] It can be seen that implementation Figure 4The described device for generating air-conditioning operation control parameters based on air-outlet time can determine the air-outlet propagation route of the target air-conditioner (the air-outlet propagation route includes at least one propagation node), determine the air-outlet operation time information of the target air-conditioner, and determine the target additional operation time of the target air-conditioner for each propagation node based on the air-outlet operation time information, and generate the target operation control parameters of the target air-conditioner based on the target additional operation time corresponding to each propagation node. It can automatically determine the air-outlet propagation route and air-outlet operation time information of the target air-conditioner, and can accurately determine the current air-outlet effect of the target air-conditioner for each propagation node in the air-outlet propagation route based on the air-outlet operation time information, which is conducive to improving the accuracy of determining the current air-outlet effect of each propagation node, and can quickly and accurately determine the target additional operation time for the propagation node through the current air-outlet effect of each propagation node and its expected air-outlet effect, or through the current air-outlet effect of each propagation node The regional temperature control result brought about by the result can accurately and reliably determine the target additional operating time for the propagation node, which is conducive to improving the flexibility and diversity of determining the target additional operating time for each propagation node, and can also accurately generate the target operating control parameters of the target air conditioner based on the accurate determination of the target additional operating time for each propagation node, which can improve the accuracy and flexibility of generating the operating control parameters of the target air conditioner, and is conducive to improving the subsequent air outlet control accuracy of the air outlet propagation route by the target air conditioner based on the accurately generated operating control parameters, and is conducive to accurately controlling the propagation distance of the target air conditioner at each propagation node in the air outlet propagation route, thereby facilitating the realization of consistent wind speed at each propagation node based on the accurately controlled propagation distance, and further conducive to improving the comfort of users in the area where the air outlet propagation route is located, and is conducive to meeting the user's demand for intelligent control of the target air conditioner, and is also conducive to improving the user's usage experience and usage stickiness.

[0177] In an optional embodiment, the determination module 301 determines the target additional operation time of the target air conditioner for each propagation node according to the air outlet operation time information, and the method may specifically include:

[0178] Determine the first additional running time of the target air conditioner for each propagation node according to the air outlet running time information;

[0179] Obtain scene information of the scene where the target air conditioner is located;

[0180] According to the scene information, all propagation nodes of the outflow propagation route are classified to obtain a classification result, which includes a first-category propagation node group and a second-category propagation node group. The first-category propagation node group is empty or all propagation nodes in the first-category propagation node group do not have corresponding airflow diffusion areas. The second-category propagation node group is empty or all propagation nodes in the second-category propagation node group have corresponding airflow diffusion areas, and the first-category propagation node group and the second-category propagation node group are not empty at the same time.

[0181] When the first type propagation node group is not empty, determining a first additional running time as a target additional running time of each propagation node in the first type propagation node group; and / or,

[0182] When the second-type propagation node group is not empty, the second additional running time of the propagation node is determined based on the airflow diffusion area corresponding to each propagation node in the second-type propagation node group and the first additional running time of the propagation node, as the target additional running time of the propagation node, and the second additional running time is greater than the first additional running time.

[0183] It can be seen that this optional embodiment can determine the first additional running time of the target air conditioner for each propagation node based on the air outlet running time information, can accurately determine the first additional running time of the target air conditioner for each propagation node based on the air outlet running time information, and classify all propagation nodes of the air outlet propagation route according to the acquired scene information of the scene in which the target air conditioner is located to obtain a classification result (the classification result includes a first-class propagation node group and a second-class propagation node group), which can improve the classification accuracy and speed of the propagation node. When the first-class propagation node group is not empty, the first additional running time is determined as the target additional running time for each propagation node in the first-class propagation node group, which can improve the efficiency and speed of determining the target additional running time; and / or, when the second-class propagation node group is not empty, the second additional running time of the propagation node is determined according to the airflow diffusion area corresponding to each propagation node in the second-class propagation node group and the first additional running time of the propagation node, as the target additional running time of the propagation node, which can improve the accuracy and reliability of determining the target additional running time, and is conducive to improving the diversity and flexibility of determining the target additional running time based on the diversity of classification results.

[0184] In this optional embodiment, as an optional implementation manner, the determination module 301 determines the first additional operation duration of the target air conditioner for each propagation node based on the air outlet operation time information, which may specifically include:

[0185] Determine the continuous air-discharging time and the intermittent air-discharging time of the target air-conditioner according to the air-discharging operation time information;

[0186] Determine a first current wind output effect of each propagation node according to the continuous wind output time and the intermittent wind output time, where the first current wind output effect includes a first current wind speed condition and an airflow condition;

[0187] According to a first current air outlet effect of each propagation node and the determined expected air outlet effect of each propagation node, a first additional operation time of the target air conditioner for each propagation node is determined.

[0188] It can be seen that this optional implementation method can determine the continuous air outlet time and the intermittent air outlet time of the target air conditioner based on the air outlet operation time information, can accurately determine the continuous air outlet time and the intermittent air outlet time of the target air conditioner, and determine the first current air outlet effect of each propagation node based on the continuous air outlet time and the intermittent air outlet time, can accurately determine the first current air outlet effect of each propagation node, and determine the first additional operation time of the target air conditioner for each propagation node based on the first current air outlet effect of each propagation node and the determined expected air outlet effect of each propagation node, which can improve the accuracy and reliability of determining the first additional operation time.

[0189] In this optional embodiment, the determining module 301 may determine a first additional operating time of the target air conditioner for each propagation node based on the first current air outlet effect of each propagation node and the determined expected air outlet effect of each propagation node, including:

[0190] For each propagation node, compare the first current air outlet effect of the propagation node with the determined expected air outlet effect of the propagation node to obtain an air outlet effect comparison result of the propagation node;

[0191] When the air outlet effect comparison result of the propagation node indicates that the first current air outlet effect of the propagation node has reached the expected air outlet effect of the propagation node, determining that the propagation node does not need additional operation of the target air conditioner;

[0192] When the comparison result of the air outlet effect of the propagation node indicates that the first current air outlet effect of the propagation node has not yet reached the expected air outlet effect of the propagation node, the correspondence between the air outlet effect of the propagation node and the operating duration is determined according to the first current air outlet effect of the propagation node and the current operating duration included in the acquired current operating control parameters of the target air conditioner;

[0193] According to the difference between the first current air outlet effect of the propagation node and the expected air outlet effect of the propagation node, and the correspondence between the air outlet effect and the operating time of the propagation node, the first additional operating time of the target air conditioner for the propagation node is determined.

[0194] It can be seen that this optional implementation method can also compare the first current air outlet effect of each propagation node and the determined expected air outlet effect of the propagation node to obtain the air outlet effect comparison result of the propagation node, which can improve the accuracy of the determination of the air outlet effect comparison result, and when the air outlet effect comparison result of the propagation node indicates that the first current air outlet effect of the propagation node has reached the expected air outlet effect of the propagation node, it is determined that the propagation node does not need additional operation of the target air conditioner, that is, the first additional operation time of the target air conditioner for the propagation node is determined to be zero, which can improve the speed and efficiency of determining the first additional operation time, and when the air outlet effect comparison result of the propagation node indicates that the first current air outlet effect of the propagation node has not yet reached the expected air outlet effect of the propagation node , according to the first current air outlet effect of the propagation node and the current operating duration included in the current operating control parameters of the acquired target air conditioner, the correspondence between the air outlet effect and the operating duration of the propagation node is determined, which can improve the accuracy of determining the correspondence between the air outlet effect and the operating duration, and then according to the difference between the first current air outlet effect of the propagation node and the expected air outlet effect of the propagation node, as well as the correspondence between the air outlet effect of the propagation node and the operating duration, the first additional operating duration of the target air conditioner for the propagation node is determined, which can improve the accuracy and reliability of determining the first additional operating duration, and can improve the diversity and flexibility of the determination method of the first additional operating duration according to the diverse air outlet effect comparison results of different propagation nodes.

[0195] In this optional embodiment, as another optional implementation, the determination module 301 classifies all propagation nodes of the outgoing wind propagation route according to the scene information. The method of obtaining the classification result may specifically include:

[0196] According to the scene information and the wind propagation route, the scene information is divided to obtain the area information corresponding to each propagation node;

[0197] For each propagation node, based on the area information corresponding to the propagation node, determine whether the surrounding area of ​​the propagation node meets the target conditions for airflow diffusion control;

[0198] When it is determined that the surrounding area of ​​the propagation node meets the target condition, the surrounding area of ​​the propagation node is determined as the airflow diffusion area corresponding to the propagation node;

[0199] When it is determined that the surrounding area of ​​the propagation node does not meet the target condition, determining that the propagation node does not have a corresponding airflow diffusion area;

[0200] All propagation nodes without corresponding airflow diffusion areas among all propagation nodes are classified into a first type of propagation node group, and all propagation nodes with corresponding airflow diffusion areas among all propagation nodes are classified into a second type of propagation node group.

[0201] It can be seen that this optional implementation method can divide the scene information according to the scene information and the wind propagation route to obtain the area information corresponding to each propagation node, which can improve the accuracy and reliability of the division of the area information corresponding to each propagation node, and based on the area information corresponding to each propagation node, judge whether the surrounding area of ​​the propagation node meets the target conditions for airflow diffusion control, and obtain a judgment result. When the judgment result is yes, the surrounding area of ​​the propagation node is determined as the airflow diffusion area corresponding to the propagation node. When the judgment result is no, it is determined that the propagation node does not have a corresponding airflow diffusion area, which can improve the accuracy and reliability of determining whether each propagation node has a corresponding airflow diffusion area. Subsequently, all propagation nodes that do not have corresponding airflow diffusion areas among all propagation nodes are classified into the first type of propagation node group, and all propagation nodes that have corresponding airflow diffusion areas among all propagation nodes are classified into the second type of propagation node group, which can improve the classification accuracy and reliability of all propagation nodes through airflow diffusion areas.

[0202] In this optional embodiment, as another optional implementation, the determination module 301 determines the second additional running time of the propagation node based on the airflow diffusion area corresponding to each propagation node in the second type propagation node group and the first additional running time of the propagation node. The method of setting the second additional running time as the target additional running time of the propagation node may specifically include:

[0203] For each propagation node in the second type of propagation node group, determining the area information of the airflow diffusion region corresponding to the propagation node according to the region information corresponding to the propagation node;

[0204] Determine a second current air outlet effect of the airflow diffusion area corresponding to the propagation node;

[0205] The second additional operation time of the propagation node is determined according to the first additional operation time of the propagation node, the area information of the airflow diffusion region, and the second current air outlet effect.

[0206] It can be seen that this optional implementation method can determine the area information of the airflow diffusion area corresponding to each propagation node in the second type of propagation node group based on the area information corresponding to the propagation node, thereby improving the accuracy of determining the airflow diffusion area and thus improving the accuracy of determining the area information of the airflow diffusion area, and automatically determine the second current wind output effect of the airflow diffusion area corresponding to the propagation node, and determine the second additional operation time of the propagation node based on the first additional operation time of the propagation node, the area information of the airflow diffusion area and the second current wind output effect, thereby improving the accuracy and reliability of determining the second additional operation time of each propagation node in the second type of propagation node group.

[0207] In another optional embodiment, the method in which the determination module 301 determines the air outlet propagation route of the target air conditioner may specifically include:

[0208] Obtain the current operating control parameters of the target air conditioner;

[0209] Determine the air outlet propagation route of the target air conditioner based on the current operating control parameters.

[0210] It can be seen that this optional embodiment can obtain the current operating control parameters of the target air conditioner, and determine the air outlet propagation route of the target air conditioner based on the current operating control parameters. It can quickly and accurately determine the air outlet propagation route of the target air conditioner based on the acquired current operating control parameters of the target air conditioner, which is beneficial to improve the accuracy of subsequent determination of the target additional operating time based on the accurately determined air outlet propagation route.

[0211] In this optional embodiment, as an optional implementation, the generation module 302 generates the target operation control parameters of the target air conditioner according to the target additional operation duration corresponding to each propagation node, which may specifically include:

[0212] The target operation control parameters of the target air conditioner are generated according to the target additional operation time corresponding to each propagation node and the current operation control parameters.

[0213] It can be seen that this optional implementation method can generate the target operating control parameters of the target air conditioner based on the target additional operating time corresponding to each propagation node and the current operating control parameters. It can flexibly and accurately generate the target operating control parameters of the target air conditioner based on the current operating control parameters according to the target additional operating time with diversified values.

[0214] Example 4

[0215] See also Figure 5 , Figure 5 This is a structural diagram of another device for generating air-conditioning operation control parameters based on air-outlet time disclosed in an embodiment of the present invention. Figure 5 As shown, the device for generating the air-conditioning operation control parameter based on the air outlet time may include:

[0216] A memory 401 storing executable program code;

[0217] a processor 402 coupled to the memory 401;

[0218] The processor 402 calls the executable program code stored in the memory 401 to execute the steps of the method for generating air-conditioning operation control parameters based on air outlet time described in the first embodiment or the second embodiment of the present invention.

[0219] Example 5

[0220] An embodiment of the present invention discloses a computer storage medium, which stores computer instructions. When the computer instructions are called, they are used to execute the steps in the method for generating air conditioning operation control parameters based on air outlet time described in Example 1 or Example 2 of the present invention.

[0221] Example 6

[0222] An embodiment of the present invention discloses a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to enable a computer to execute the steps in the method for generating air-conditioning operation control parameters based on air outlet time described in Example 1 or Example 2.

[0223] The device embodiments described above are merely illustrative, 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., they may be located in one place or distributed across multiple network modules. Some or all of the modules may be selected based on actual needs to achieve the objectives of the present embodiment. Those skilled in the art can understand and implement the present invention without inventive effort.

[0224] Through the detailed description of the above embodiments, those skilled in the art can clearly understand that each embodiment can be implemented by means of software plus the necessary general hardware platform, or of course, by means of hardware. Based on this understanding, the above technical solution, in essence, or the portion that contributes to the prior art, can be embodied in the form of a software product, which can be stored in a computer-readable storage medium, including a read-only memory (ROM), a random access memory (RAM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), a one-time programmable read-only memory (OTPROM), an electronically erasable programmable read-only memory (EEPROM), a compact disc read-only memory (CD-ROM) or other optical disc storage, magnetic disk storage, magnetic tape storage, or any other computer-readable medium capable of carrying or storing data.

[0225] Finally, it should be noted that the method and device for generating air-conditioning operation control parameters based on air outlet time disclosed in the embodiment of the present invention are only preferred embodiments of the present invention, and are only used to illustrate the technical solution of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, ordinary technicians in this field should understand that it is still possible to modify the technical solutions recorded in the aforementioned embodiments, or to replace some of the technical features therein with equivalents. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention.

Claims

1. A method for generating air conditioning operation control parameters based on air outlet time, characterized in that: The method comprises: Determining an air flow propagation route of a target air conditioner, wherein the air flow propagation route includes at least one propagation node, and the propagation node is used to propagate the air flow output by the target air conditioner; Determining the air outlet operation time information of the target air conditioner, and determining the target additional operation time of the target air conditioner for each of the propagation nodes based on the air outlet operation time information; A target operation control parameter of the target air conditioner is generated according to the target additional operation duration corresponding to each of the propagation nodes.

2. The method for generating air-conditioning operation control parameters based on air-out time according to claim 1, characterized in that: The step of determining, based on the air outlet operation time information, a target additional operation time of the target air conditioner for each of the propagation nodes includes: determining, based on the air outlet operation time information, a first additional operation time of the target air conditioner for each of the propagation nodes; Obtaining scene information of the scene in which the target air conditioner is located; Classifying all propagation nodes of the air outlet propagation route according to the scene information to obtain a classification result, the classification result including a first-category propagation node group and a second-category propagation node group, the first-category propagation node group is empty or all propagation nodes in the first-category propagation node group do not have corresponding airflow diffusion areas, the second-category propagation node group is empty or all propagation nodes in the second-category propagation node group have corresponding airflow diffusion areas, and the first-category propagation node group and the second-category propagation node group are not empty at the same time; When the first type propagation node group is not empty, determining the first additional running time as the target additional running time of each propagation node in the first type propagation node group; and / or, When the second type of propagation node group is not empty, the second additional running time of the propagation node is determined according to the airflow diffusion area corresponding to each propagation node in the second type of propagation node group and the first additional running time of the propagation node, as the target additional running time of the propagation node, and the second additional running time is greater than the first additional running time.

3. The method for generating air-conditioning operation control parameters based on air-out time according to claim 2, characterized in that: The determining, based on the air outlet operation time information, a first additional operation time of the target air conditioner for each of the propagation nodes includes: Determining the continuous air output time and the intermittent air output time of the target air conditioner according to the air output operation time information; Determining a first current air outlet effect of each of the propagation nodes according to the continuous air outlet time and the intermittent air outlet time, wherein the first current air outlet effect includes a first current wind speed condition and an airflow condition; According to a first current air outlet effect of each of the propagation nodes and the determined expected air outlet effect of each of the propagation nodes, a first additional operating time of the target air conditioner for each of the propagation nodes is determined.

4. The method for generating air-conditioning operation control parameters based on air-out time according to claim 3, characterized in that: The determining, based on the first current air outlet effect of each of the propagation nodes and the determined expected air outlet effect of each of the propagation nodes, a first additional operating time of the target air conditioner for each of the propagation nodes includes: For each of the propagation nodes, comparing the first current air outlet effect of the propagation node with the determined expected air outlet effect of the propagation node to obtain an air outlet effect comparison result of the propagation node; When the air outlet effect comparison result of the propagation node indicates that the first current air outlet effect of the propagation node has reached the expected air outlet effect of the propagation node, determining that the propagation node does not need additional operation of the target air conditioner; When the comparison result of the air outlet effect of the propagation node indicates that the first current air outlet effect of the propagation node has not yet reached the expected air outlet effect of the propagation node, the correspondence between the air outlet effect of the propagation node and the operating duration is determined according to the first current air outlet effect of the propagation node and the current operating duration included in the acquired current operating control parameters of the target air conditioner; According to the difference between the first current air outlet effect of the propagation node and the expected air outlet effect of the propagation node, and the correspondence between the air outlet effect and the operating time of the propagation node, the first additional operating time of the target air conditioner for the propagation node is determined.

5. The method for generating air-conditioning operation control parameters based on air-out time according to any one of claims 2 to 4, characterized in that: The classifying all propagation nodes of the outgoing wind propagation route according to the scene information to obtain a classification result includes: Dividing the scene information according to the scene information and the wind propagation route to obtain area information corresponding to each propagation node; For each of the propagation nodes, judging whether the surrounding area of ​​the propagation node meets the target conditions for airflow diffusion control according to the area information corresponding to the propagation node; When it is determined that the surrounding area of ​​the propagation node meets the target condition, the surrounding area of ​​the propagation node is determined as the airflow diffusion area corresponding to the propagation node; When it is determined that the surrounding area of ​​the propagation node does not meet the target condition, determining that the propagation node does not have a corresponding airflow diffusion area; All propagation nodes without corresponding airflow diffusion areas among all the propagation nodes are classified into a first type of propagation node group, and all propagation nodes with corresponding airflow diffusion areas among all the propagation nodes are classified into a second type of propagation node group.

6. The method for generating air-conditioning operation control parameters based on air-out time according to any one of claims 2 to 4, characterized in that: The determining, based on the airflow diffusion area corresponding to each propagation node in the second-type propagation node group and the first additional running time of the propagation node, a second additional running time of the propagation node as a target additional running time of the propagation node includes: For each propagation node in the second type of propagation node group, determining area information of the airflow diffusion region corresponding to the propagation node according to the region information corresponding to the propagation node; Determine a second current air outlet effect of the airflow diffusion area corresponding to the propagation node; The second additional operation time of the propagation node is determined according to the first additional operation time of the propagation node, the area information of the airflow diffusion area, and the second current air outlet effect.

7. The method for generating air-conditioning operation control parameters based on air-out time according to any one of claims 1 to 4, characterized in that: Determining the air outlet propagation route of the target air conditioner includes: Obtain the current operating control parameters of the target air conditioner; determining an air outlet propagation route of the target air conditioner according to the current operation control parameters; Furthermore, generating target operation control parameters of the target air conditioner according to the target additional operation duration corresponding to each of the propagation nodes includes: The target operation control parameters of the target air conditioner are generated according to the target additional operation duration corresponding to each of the propagation nodes and the current operation control parameters.

8. A device for generating air-conditioning operation control parameters based on air-out time, characterized in that: The device comprises: a determination module, configured to determine an air flow propagation route of a target air conditioner, wherein the air flow propagation route includes at least one propagation node, and the propagation node is configured to propagate the air flow output by the target air conditioner; The determining module is further configured to determine the air outlet operation time information of the target air conditioner, and determine the target additional operation time of the target air conditioner for each of the propagation nodes based on the air outlet operation time information; A generating module is used to generate target operating control parameters of the target air conditioner according to the target additional operating time corresponding to each of the propagation nodes.

9. A device for generating air-conditioning operation control parameters based on air-out time, characterized in that: The device comprises: a memory storing executable program code; a processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the method for generating air-conditioning operation control parameters based on air outlet time according to any one of claims 1 to 7.

10. A computer storage medium, characterized in that The computer storage medium stores computer instructions, and when the computer instructions are called, they are used to execute the method for generating air-conditioning operation control parameters based on air outlet time according to any one of claims 1 to 7.

Citation Information

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