Method and device for determining comfortable temperature of user
By analyzing the air conditioner's operating mode and the temperature value input by the user, and combining the system's comfort algorithm and historical records, the system intelligently determines the air conditioner's comfortable temperature, solving the problem of inaccurate air conditioner temperature adjustment and improving user comfort and convenience.
Patent Information
- Application Number
- CN202410629633.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-20
- Publication Date
- 2025-11-21
AI Technical Summary
The air conditioner requires manual adjustment of the operating temperature, which can result in the temperature being too low or too high, failing to meet the user's comfort needs, and has a low level of intelligence and accuracy.
By acquiring the current operating mode of the air conditioner and the temperature value input by the user, and combining the system's comfort algorithm with historical usage records, the system intelligently analyzes and determines the user's comfortable temperature value, including temperature settings and airflow control strategies for different operating stages.
It improves the accuracy of intelligent analysis of air conditioner comfort temperature and enhances user comfort, simplifies the temperature adjustment process, and improves the convenience and comfort of air conditioning for users.
Smart Images

Figure CN120991434A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of air conditioning technology, and in particular to a method and apparatus for determining user comfort temperature. Background Technology
[0002] With the continuous improvement of people's living standards and the rapid development of science and technology, smart home appliances are gradually entering thousands of households, bringing convenience to people's lives. As people's demands for indoor comfort and living experience continue to increase, smart air conditioners have become an indispensable smart home appliance for many families.
[0003] In real-life situations, air conditioner operating temperatures often require manual adjustment by users. However, manually set temperatures are frequently either too low or too high, failing to meet users' comfort needs. This necessitates multiple adjustments to achieve a comfortable temperature, a process that is both unintelligent and cumbersome. Therefore, proposing a technical solution that can intelligently analyze and determine the user's comfort temperature, thereby improving the intelligence and accuracy of temperature determination, is of paramount importance. Summary of the Invention
[0004] This invention provides a method and apparatus for determining user comfort temperature, which can intelligently analyze and determine the user's comfort temperature, thereby improving the intelligence and accuracy of user comfort temperature determination.
[0005] To address the aforementioned technical problems, the first aspect of this invention discloses a method for determining a user comfort temperature, the method comprising:
[0006] When the air conditioner is running, the current operating mode of the air conditioner is obtained, and it is determined whether the current operating mode is the target operating mode, and the determination result is obtained.
[0007] When the judgment result indicates that the current operating mode is the target operating mode, the user's input temperature value for the target operating mode is obtained, and the operating stage of the air conditioner in the target operating mode is determined;
[0008] Based on the input temperature value and the operating stage, a comfortable temperature value matching the user is determined.
[0009] As an optional implementation, in the first aspect of the present invention, the operation phase includes a first operation phase and a second operation phase;
[0010] Determining a comfortable temperature value matching the user based on the input temperature value and the operating stage includes:
[0011] The system comfort algorithm calculates the corresponding algorithm input comfort temperature value for the user based on the preset system comfort algorithm;
[0012] The algorithm determines the operating stage when the user inputs the temperature value. When the user is in the first operating stage, the algorithm determines the input temperature value as the first comfortable temperature value that matches the user in the first operating stage, and determines the algorithm input comfortable temperature value as the second comfortable temperature value that matches the user in the second operating stage. The comfortable temperature value includes the first comfortable temperature value and the second comfortable temperature value.
[0013] When the user inputs the input temperature value and is in the second operating phase, a third comfortable temperature value matching the user in the second operating phase is calculated based on the input temperature value and the algorithm input comfortable temperature value. The comfortable temperature value includes the third comfortable temperature value.
[0014] As an optional implementation, in a first aspect of the invention, calculating a third comfortable temperature value matching the user for the second operating phase based on the input temperature value and the algorithm-input comfortable temperature value includes:
[0015] Determine the target operating temperature value corresponding to the second operating stage of the target operating mode;
[0016] Calculate the first temperature difference between the target operating temperature value and the input temperature value based on the target operating temperature value and the input temperature value;
[0017] Calculate a second temperature difference between the algorithm input comfort temperature value and the first temperature difference value, and determine the second temperature difference value as a third comfort temperature value that matches the user in the second operating phase.
[0018] As an optional implementation, in the first aspect of the present invention, the step of calculating the algorithm input comfort temperature value corresponding to the user according to a preset system comfort algorithm includes:
[0019] Obtain the user's historical usage records for the air conditioner, including the user's historical temperature and historical physical condition for each use of the air conditioner;
[0020] Based on the historical usage records, determine the user's temperature habits for the air conditioner under at least one historical physical condition;
[0021] The system obtains the user's current physical state and the user's current comfort needs, and predicts the user's current comfort temperature value for the air conditioner based on the current physical state and the user's temperature habits for the air conditioner under each of the historical physical states.
[0022] Based on the predicted comfort temperature value, the current comfort requirements, and the preset system comfort algorithm, the algorithm input comfort temperature value corresponding to the user is calculated.
[0023] As an optional implementation, in the first aspect of the present invention, the method further includes:
[0024] When the determination result indicates that the current operating mode is the target operating mode, it is determined whether the user has input the input temperature value for the target operating mode. When the user inputs the input temperature value for the target operating mode, the operation of obtaining the user's input temperature value for the target operating mode is triggered.
[0025] When the user does not input the input temperature value for the target operating mode, the memory temperature value corresponding to the target operating mode is obtained, and the memory temperature value is determined as the fourth comfort temperature value that matches the user in the first operating stage. The memory temperature value includes the last operating temperature value saved when the air conditioner is turned off.
[0026] As an optional implementation, in the first aspect of the present invention, the method further includes:
[0027] Calculate the third temperature difference between the target operating temperature value and the comfort temperature value input by the algorithm, and determine whether the third temperature difference is less than a preset temperature difference threshold.
[0028] When the third temperature difference is less than the temperature difference threshold, the operation of calculating the first temperature difference between the target operating temperature value and the input temperature value based on the target operating temperature value and the input temperature value is triggered.
[0029] When the third temperature difference is greater than or equal to the temperature difference threshold, the target operating temperature value is determined as the fifth comfortable temperature value that matches the user in the second operating phase, and the user is given an abnormal temperature setting reminder based on the third temperature difference.
[0030] As an optional implementation, in the first aspect of the present invention, the method further includes:
[0031] The system acquires environmental data of the target environment where the air conditioner is located and the location information of the user in the target environment, wherein the environmental data includes the ambient wind speed.
[0032] An airflow control strategy for the air conditioner is generated based on the ambient wind speed, the location information, and the user's current physical condition.
[0033] Based on the air outlet control strategy and the comfort temperature value, a comprehensive operation control strategy for the air conditioner is determined.
[0034] A second aspect of the present invention discloses a device for determining a user's comfort temperature, the device comprising:
[0035] The acquisition module is used to acquire the current operating mode of the air conditioner when the air conditioner is in operation, and to determine whether the current operating mode is the target operating mode, and to obtain the determination result.
[0036] The acquisition module is further configured to acquire the user's input temperature value for the target operating mode and determine the operating stage of the air conditioner in the target operating mode when the judgment result indicates that the current operating mode is the target operating mode;
[0037] The determination module is used to determine a comfortable temperature value that matches the user based on the input temperature value and the operating stage.
[0038] As an optional implementation, in a second aspect of the present invention, the operation phase includes a first operation phase and a second operation phase;
[0039] The method by which the determining module determines a comfortable temperature value matching the user based on the input temperature value and the operating stage specifically includes:
[0040] The system comfort algorithm calculates the corresponding algorithm input comfort temperature value for the user based on the preset system comfort algorithm;
[0041] The algorithm determines the operating stage when the user inputs the temperature value. When the user is in the first operating stage, the algorithm determines the input temperature value as the first comfortable temperature value that matches the user in the first operating stage, and determines the algorithm input comfortable temperature value as the second comfortable temperature value that matches the user in the second operating stage. The comfortable temperature value includes the first comfortable temperature value and the second comfortable temperature value.
[0042] When the user inputs the input temperature value and is in the second operating phase, a third comfortable temperature value matching the user in the second operating phase is calculated based on the input temperature value and the algorithm input comfortable temperature value. The comfortable temperature value includes the third comfortable temperature value.
[0043] As an optional implementation, in a second aspect of the invention, the method by which the determining module calculates a third comfortable temperature value matching the user for the second operating phase based on the input temperature value and the algorithm-input comfortable temperature value specifically includes:
[0044] Determine the target operating temperature value corresponding to the second operating stage of the target operating mode;
[0045] Calculate the first temperature difference between the target operating temperature value and the input temperature value based on the target operating temperature value and the input temperature value;
[0046] Calculate a second temperature difference between the algorithm input comfort temperature value and the first temperature difference value, and determine the second temperature difference value as a third comfort temperature value that matches the user in the second operating phase.
[0047] As an optional implementation, in the second aspect of the present invention, the method by which the determining module calculates the algorithm input comfort temperature value corresponding to the user according to a preset system comfort algorithm specifically includes:
[0048] Obtain the user's historical usage records for the air conditioner, including the user's historical temperature and historical physical condition for each use of the air conditioner;
[0049] Based on the historical usage records, determine the user's temperature habits for the air conditioner under at least one historical physical condition;
[0050] The system obtains the user's current physical state and the user's current comfort needs, and predicts the user's current comfort temperature value for the air conditioner based on the current physical state and the user's temperature habits for the air conditioner under each of the historical physical states.
[0051] Based on the predicted comfort temperature value, the current comfort requirements, and the preset system comfort algorithm, the algorithm input comfort temperature value corresponding to the user is calculated.
[0052] As an optional implementation, in a second aspect of the invention, the apparatus further includes:
[0053] The judgment module is used to determine whether the user has input the input temperature value for the target operating mode when the judgment result indicates that the current operating mode is the target operating mode. When the user inputs the input temperature value for the target operating mode, the acquisition module is triggered to perform the operation of acquiring the user's input temperature value for the target operating mode.
[0054] The acquisition module is further configured to acquire the memory temperature value corresponding to the target operating mode when the user does not input the input temperature value for the target operating mode, and determine the memory temperature value as the fourth comfort temperature value matching the user in the first operating stage. The memory temperature value includes the last operating temperature value saved when the air conditioner is turned off.
[0055] As an optional implementation, in a second aspect of the invention, the apparatus further includes:
[0056] The calculation module is used to calculate a third temperature difference between the target operating temperature value and the algorithm input comfort temperature value, and to determine whether the third temperature difference is less than a preset temperature difference threshold. When the third temperature difference is less than the temperature difference threshold, the determination module is triggered to perform the operation of calculating a first temperature difference between the target operating temperature value and the input temperature value based on the target operating temperature value and the input temperature value.
[0057] The determining module is further configured to determine the target operating temperature value as the fifth comfortable temperature value matching the user in the second operating phase when the third temperature difference is greater than or equal to the temperature difference threshold, and to provide the user with an abnormal temperature setting reminder based on the third temperature difference.
[0058] As an optional implementation, in a second aspect of the present invention, the acquisition module is further configured to acquire environmental data of the target environment where the air conditioner is located and the location information of the user in the target environment, wherein the environmental data includes the ambient wind speed;
[0059] The device further includes:
[0060] The generation module is used to generate an airflow control strategy for the air conditioner based on the ambient wind speed, the location information, and the user's current physical state.
[0061] The determining module is further configured to determine a comprehensive operation control strategy for the air conditioner based on the air outlet control strategy and the comfort temperature value.
[0062] A third aspect of the present invention discloses another device for determining a user comfort temperature, the device comprising:
[0063] Memory containing executable program code;
[0064] A processor coupled to the memory;
[0065] The processor calls the executable program code stored in the memory to execute the method for determining user comfort temperature disclosed in the first aspect of the present invention.
[0066] The fourth aspect of the present invention discloses a computer storage medium storing computer instructions, which, when invoked, are used to execute the method for determining user comfort temperature disclosed in the first aspect of the present invention.
[0067] Compared with the prior art, the embodiments of the present invention have the following beneficial effects:
[0068] In this embodiment of the invention, when the air conditioner is operating in the target operating mode, a comfortable temperature value matching the user is determined based on the user's input temperature value for the target operating mode and the air conditioner's operating stage within that mode. Therefore, implementing this invention enables intelligent analysis and determination of the user's comfortable temperature value, improving the intelligence and accuracy of this determination, and consequently enhancing the user's comfort and convenience when using the air conditioner. Attached Figure Description
[0069] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0070] Figure 1 This is a schematic diagram illustrating an application scenario of a method for determining user comfort temperature disclosed in an embodiment of the present invention.
[0071] Figure 2 This is a flowchart illustrating a method for determining user comfort temperature as disclosed in an embodiment of the present invention;
[0072] Figure 3 This is a flowchart illustrating another method for determining user comfort temperature disclosed in an embodiment of the present invention;
[0073] Figure 4 This is a schematic diagram of the structure of a user comfort temperature determination device disclosed in an embodiment of the present invention;
[0074] Figure 5 This is a schematic diagram of another device for determining user comfort temperature disclosed in an embodiment of the present invention;
[0075] Figure 6 This is a schematic diagram of another device for determining user comfort temperature disclosed in an embodiment of the present invention. Detailed Implementation
[0076] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0077] The terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this invention are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, apparatus, product, or end that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or ends.
[0078] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of the invention. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0079] This invention discloses a method and apparatus for determining user comfort temperature, which can intelligently analyze and determine the user's comfort temperature value, improving the intelligence and accuracy of determining the user's comfort temperature value, thereby enhancing the user's comfort and convenience when using air conditioning. Detailed descriptions follow.
[0080] To better understand the method and apparatus for determining user comfort temperature described in this invention, the scenario to which the method for determining user comfort temperature is applicable is first described. Specifically, this scenario can be as follows: Figure 1 As shown, Figure 1 This is a schematic diagram illustrating an application scenario of a method for determining user comfort temperature disclosed in an embodiment of the present invention. For example... Figure 1 As shown in the diagram, this scenario includes a user (e.g., Xiaoming), smart home devices (e.g., a smart air conditioner, a cleaning robot), and a smartphone. The user can control the smart air conditioner via its controller or smartphone. User information can be collected through the smart air conditioner, smartphone, or other smart home devices. Based on this information, the user's input temperature, and the smart air conditioner's operating mode, a comfortable temperature value is determined for the user, and the smart air conditioner's operation is controlled accordingly.
[0081] It should be noted that, Figure 1 The scenario diagram shown is only intended to illustrate the applicable scenarios for determining user comfort temperature. The users, smart home devices, and smartphones involved are also only for illustrative purposes. Figure 1 The scenario diagram shown is not limited to this. Furthermore, the scenarios applicable to the method for determining user comfort temperature have been described above. The following section provides a detailed description of the method and device for determining user comfort temperature.
[0082] Example 1
[0083] Please see Figure 2 , Figure 2 This is a flowchart illustrating a method for determining user comfort temperature according to an embodiment of the present invention. Wherein, Figure 2 The described method for determining user comfort temperature can be applied to a device for determining user comfort temperature. This device can include any one of a user device, a smart server, or a smart platform. The user device includes, but is not limited to, at least one of smart home devices (e.g., smart air conditioners, smart refrigerators, smart fans, smart TVs), smartphones (Android phones, iOS phones, etc.), and smart phone watches. The smart server includes a local server or a cloud server; this embodiment of the invention does not limit the scope. Figure 2 As shown, the method for determining the user's comfort temperature may include the following operations:
[0084] 101. When the air conditioner is in operation, obtain the current operating mode of the air conditioner, determine whether the current operating mode is the target operating mode, and obtain the determination result.
[0085] In this embodiment of the invention, the current operating mode of the air conditioner may optionally include one of the following: normal mode, global airflow mode, and AI mode. The target operating mode may include global airflow mode or AI mode. This invention does not limit the specific mode.
[0086] 102. When the judgment result indicates that the current operating mode is the target operating mode, obtain the user's input temperature value for the target operating mode and determine the operating stage of the air conditioner in the target operating mode.
[0087] In this embodiment of the invention, optionally, when the judgment result indicates that the current operating mode is the target operating mode, that is, when the judgment result indicates that the current operating mode is the global wind mode or the AI mode, the user's input temperature value for the target operating mode is obtained. The user can input the input temperature value through the controller corresponding to the air conditioner, or through a smart mobile device (such as a smartphone, smart tablet, etc.) that can control the air conditioner, or through voice input. This invention does not limit the input temperature value.
[0088] In this embodiment of the invention, optionally, the air conditioner may include three operating stages when operating in the whole-area wind mode: comfortable cooling, whole-house cooling supplementation, and comfortable quiet enjoyment. The AI mode includes AI cooling and AI heating, and AI cooling includes two operating stages: rapid cooling and supplementary cooling. This invention does not limit these stages.
[0089] 103. Determine a comfortable temperature value that matches the user based on the input temperature value and the operating stage.
[0090] It is evident that implementation Figure 2 The described method for determining user comfort temperature can determine a comfortable temperature value that matches the user when the air conditioner is in the target operating mode, based on the user's input temperature value for the target operating mode and the operating stage of the air conditioner in the target operating mode. It can intelligently analyze and determine the user's comfort temperature value, improve the intelligence and accuracy of determining the user's comfort temperature value, and thus help improve the user's comfort and convenience when using the air conditioner.
[0091] In an optional embodiment, the method for determining the user comfort temperature may further include the following operations:
[0092] Calculate the third temperature difference between the target operating temperature value and the algorithm input comfort temperature value, and determine whether the third temperature difference is less than the preset temperature difference threshold.
[0093] When the third temperature difference is less than the temperature difference threshold, the operation of calculating the first temperature difference between the target operating temperature value and the input temperature value is triggered.
[0094] When the third temperature difference is greater than or equal to the temperature difference threshold, the target operating temperature value is determined as the fifth comfortable temperature value that matches the user in the second operating phase, and the user is alerted to abnormal temperature settings based on the third temperature difference.
[0095] In this optional embodiment, the preset temperature difference threshold can be set by the user or automatically determined based on the user's historical usage records of the air conditioner. The preset temperature difference threshold may include 1.5. When the third temperature difference is less than the temperature difference threshold, the operation of calculating the first temperature difference between the target operating temperature value and the input temperature value is triggered. When the third temperature difference is greater than or equal to the temperature difference threshold, the target operating temperature value is determined as the fifth comfortable temperature value that matches the user in the second operating stage, that is, the current operating temperature of the air conditioner is not changed. The user is reminded of the abnormal temperature setting based on the third temperature difference. The user can be reminded of the abnormal temperature setting through the air conditioner or through a smart device that is wirelessly connected to the air conditioner. The smart device may include smartphones, etc. The reminder method may include one or more combinations of light reminders, image reminders, text reminders, and voice reminders, etc., which are not limited in this embodiment.
[0096] As can be seen, implementing this optional embodiment can determine the target operating temperature value as the fifth comfortable temperature value matching the user in the second operating stage when the third temperature difference between the target operating temperature value and the algorithm input comfortable temperature value is greater than or equal to the temperature difference threshold. Furthermore, it can provide the user with a temperature setting anomaly alert based on the third temperature difference. This reduces the occurrence of large deviations in the determined comfortable temperature value matching the user due to large errors in the algorithm input comfortable temperature value determination, improves the rationality and reliability of determining the user-matched comfortable temperature value, and provides the user with a timely understanding of the air conditioner's temperature setting status, thereby enhancing the user's convenience in using the air conditioner.
[0097] In another alternative embodiment, the method for determining the user comfort temperature may further include the following operations:
[0098] Acquire environmental data of the target environment where the air conditioner is located, as well as the user's location information in the target environment. The environmental data includes the ambient wind speed.
[0099] An airflow control strategy for the air conditioner is generated based on ambient wind speed, location information, and the user's current physical condition.
[0100] Based on the air outlet control strategy and the comfort temperature value, a comprehensive operation control strategy for the air conditioner is determined.
[0101] In this optional embodiment, the environmental data may include ambient wind speed, and may also include one or more combinations of ambient temperature, ambient humidity, seasonal data, ambient sunlight intensity, etc. The user's location information in the target environment may include the user's absolute location information in the target environment and the user's relative location information relative to the air conditioner in the target environment. The relative location information may include one or more combinations of the user's distance from the air conditioner in the target environment, the air outlet azimuth angle, and the air outlet height angle, etc. This embodiment does not limit this.
[0102] In this optional embodiment, an air outlet control strategy for the air conditioner can be generated based on the ambient wind speed, location information, and the user's current physical state. The air outlet control strategy may include an air outlet speed control strategy, an air outlet angle control strategy, etc., and may also include a strategy for the change of the air outlet speed and / or air outlet angle of the air conditioner over time within a preset time period. Based on the air outlet control strategy and the comfort temperature value, a comprehensive operation control strategy for the air conditioner is determined. The comprehensive operation control strategy for the air conditioner may include an air outlet speed control strategy, an air outlet angle control strategy, and an air outlet temperature control strategy. This embodiment does not limit this.
[0103] As can be seen, implementing this optional embodiment can generate an airflow control strategy for the air conditioner based on the ambient wind speed of the target environment where the air conditioner is located, the user's location information in the target environment, and the user's current physical state. Based on the airflow control strategy and the comfortable temperature value, a comprehensive operation control strategy for the air conditioner is determined. This can automatically and intelligently generate a comprehensive operation control strategy for the air conditioner for the user, providing a comfortable air conditioning experience and improving the user's comfort and convenience in using the air conditioner.
[0104] Example 2
[0105] Please see Figure 3 , Figure 3 This is a flowchart illustrating a method for determining user comfort temperature according to an embodiment of the present invention. Wherein, Figure 3 The described method for determining user comfort temperature can be applied to a device for determining user comfort temperature. This device can include any one of a user device, a smart server, or a smart platform. The user device includes, but is not limited to, at least one of smart home devices (e.g., smart air conditioners, smart refrigerators, smart fans, smart TVs), smartphones (Android phones, iOS phones, etc.), and smart phone watches. The smart server includes a local server or a cloud server; this embodiment of the invention does not limit the scope. Figure 3 As shown, the method for determining the user's comfort temperature may include the following operations:
[0106] 201. When the air conditioner is in operation, obtain the current operating mode of the air conditioner, determine whether the current operating mode is the target operating mode, and obtain the determination result.
[0107] 202. When the judgment result indicates that the current operating mode is the target operating mode, obtain the user's input temperature value for the target operating mode and determine the operating stage of the air conditioner in the target operating mode.
[0108] 203. Calculate the user's corresponding algorithm input comfort temperature value according to the preset system comfort algorithm.
[0109] 204. Determine the operating stage when the user inputs the temperature value.
[0110] In this embodiment of the invention, optionally, the operation phase may include a first operation phase and a second operation phase. The first operation phase may include a comfortable cooling phase under the whole-area wind mode, a rapid cooling phase under AI cooling, or an AI heating phase. The second operation phase may include a whole-house supplementary cooling phase under the whole-area wind mode, a comfortable quiet enjoyment phase, or a supplementary cooling phase under AI cooling. Furthermore, there is no fixed order of operation between the first operation phase and the second operation phase. The air conditioner may operate directly according to the first operation phase or directly according to the second operation phase. This invention does not impose any limitations.
[0111] 205. When the user inputs the temperature value and the system is in the first operating phase, the input temperature value is determined as the first comfortable temperature value that matches the user in the first operating phase, and the algorithm inputs a comfortable temperature value as the second comfortable temperature value that matches the user in the second operating phase. The comfortable temperature value includes the first comfortable temperature value and the second comfortable temperature value.
[0112] In this embodiment of the invention, optionally, when the user inputs the input temperature value, the first operating stage may mean that the user inputs the input temperature value in the comfortable cooling stage of the full-area wind mode, the rapid cooling stage of AI cooling, or the AI heating stage. At this time, the input temperature value is determined as the first comfortable temperature value matching the user in the first operating stage, and the algorithm input comfortable temperature value is determined as the second comfortable temperature value matching the user in the second operating stage. The comfortable temperature value includes the first comfortable temperature value and the second comfortable temperature value, which is not limited in this invention.
[0113] 206. When the user inputs a temperature value and is in the second operating phase, calculate the third comfortable temperature value that matches the user in the second operating phase based on the input temperature value and the algorithm input comfortable temperature value. The comfortable temperature value includes the third comfortable temperature value.
[0114] In this embodiment of the invention, optionally, when the user inputs the temperature value, the second operating stage can mean that the user is in the whole-house cooling supplementation stage, the comfortable quiet enjoyment stage, or the cooling supplementation stage under AI cooling in the whole-area wind mode. At this time, a third comfortable temperature value matching the user can be calculated based on the input temperature value and the algorithm inputs a comfortable temperature value. The comfortable temperature value includes the third comfortable temperature value, which is not limited in this invention.
[0115] It is evident that implementation Figure 3The described method for determining user comfort temperature can determine the user's comfort temperature value at different operating stages when the air conditioner is in the target operating mode, based on the operating stage at which the user inputs the temperature value and the user's corresponding algorithmic comfort temperature value calculated according to the preset system comfort algorithm. This improves the intelligence and accuracy of determining the user comfort temperature value, enhances the accuracy of determining the user comfort temperature under different operating modes and the degree of matching with the user, thereby improving the user's comfort and convenience when using the air conditioner.
[0116] In an optional embodiment, calculating a third comfort temperature value that matches the user during the second operating phase, based on the input temperature value and the algorithm-inputted comfort temperature value, may include the following operations:
[0117] Determine the target operating temperature value corresponding to the second operating stage of the target operating mode;
[0118] Calculate the first temperature difference between the target operating temperature value and the input temperature value based on the target operating temperature value and the input temperature value;
[0119] The algorithm calculates a second temperature difference between the input comfort temperature value and the first temperature difference value, and determines the second temperature difference value as the third comfort temperature value that matches the user in the second operating phase.
[0120] In this optional embodiment, the target operating temperature value corresponding to the second operating stage of the target operating mode can represent the target operating temperature value of the air conditioner when the air conditioner is in the whole-house cooling stage, the comfort and quiet stage, or the cooling stage under AI cooling in the whole-area wind mode. The target operating temperature value can be the last operating temperature value saved when the air conditioner was last turned off, which is automatically obtained when the air conditioner is turned on, or it can be the target operating temperature value set by the user after the air conditioner is turned on. This embodiment does not limit this.
[0121] In this optional embodiment, the input temperature value represents the temperature value currently input by the user to change the air conditioner's operating temperature. That is, the input temperature value is used to change and replace the target operating temperature value. The third comfort temperature value that matches the user in the second operating stage = algorithm input comfort temperature value - (target operating temperature value - input temperature value). This embodiment does not limit this.
[0122] As can be seen, implementing this optional embodiment can calculate a first temperature difference between the target operating temperature value and the input temperature value based on the target operating temperature value and the input temperature value, calculate a second temperature difference between the algorithm input comfort temperature value and the first temperature difference, and determine the second temperature difference as a third comfort temperature value that matches the user in the second operating stage. This can improve the accuracy and reliability of the calculated comfort temperature value, and at the same time improve the degree of matching between the calculated comfort temperature value and the user's temperature comfort needs, which is conducive to improving the user's comfort and convenience in using the air conditioner.
[0123] In another optional embodiment, calculating the user's corresponding algorithm input comfort temperature value according to a preset system comfort algorithm may include the following operations:
[0124] Obtain the user's historical usage records for the air conditioner, which include the user's historical temperature and physical condition for each use of the air conditioner.
[0125] Based on historical usage records, determine the user's temperature habits for air conditioning under at least one historical physical condition;
[0126] The system obtains the user's current physical condition and comfort needs, and predicts the user's current comfort temperature value for the air conditioner based on the current physical condition and the user's temperature habits for the air conditioner under each historical physical condition.
[0127] Based on the predicted comfort temperature value, current comfort requirements, and the preset system comfort algorithm, the corresponding algorithm input comfort temperature value for the user is calculated.
[0128] In this optional embodiment, the user's historical usage record of the air conditioner may include the user's historical temperature and historical physical state each time the user uses the air conditioner. The user's historical physical state may include a healthy or unhealthy state, a resting state or an active state, etc. The user's temperature habits for the air conditioner under at least one historical physical state may include the user's temperature habits for different operating modes of the air conditioner under that historical physical state and different operating stages under each operating mode. Temperature habits include comfortable temperature adjustment habits, which are not limited in this embodiment.
[0129] In this optional embodiment, the user's current comfort needs may include the user's current air conditioning operating comfort temperature needs. Based on the current physical condition and the user's temperature habits for the air conditioning under each historical physical condition, the user's current predicted comfort temperature value for the air conditioning is predicted. Based on the predicted comfort temperature value, the current comfort needs, and the preset system comfort algorithm, the user's corresponding algorithm input comfort temperature value is calculated. This embodiment does not limit this.
[0130] As can be seen, implementing this optional embodiment can determine the user's temperature habits for the air conditioner under at least one historical physical condition based on the user's historical usage records of the air conditioner. Based on the user's current physical condition and the user's temperature habits for the air conditioner under each historical physical condition, it predicts the user's current comfort temperature value for the air conditioner. Based on the predicted comfort temperature value, the current comfort requirement, and a preset system comfort algorithm, it calculates the corresponding algorithmic input comfort temperature value for the user. This improves the matching degree between the calculated corresponding algorithmic input comfort temperature value and the user's current physical condition and temperature habits, thereby improving the accuracy and reliability of the calculated corresponding algorithmic input comfort temperature value. This, in turn, improves the accuracy and reliability of subsequent calculations of the user's comfort temperature value.
[0131] In yet another optional embodiment, the method for determining the user comfort temperature may further include the following operations:
[0132] When the judgment result indicates that the current operating mode is the target operating mode, it is determined whether the user has entered the input temperature value for the target operating mode. If the user has entered the input temperature value for the target operating mode, the operation of obtaining the user's input temperature value for the target operating mode is triggered.
[0133] When the user does not input the input temperature value for the target operating mode, the memory temperature value corresponding to the target operating mode is obtained, and the memory temperature value is determined as the fourth comfort temperature value that matches the user in the first operating stage. The memory temperature value includes the last operating temperature value saved when the air conditioner is turned off.
[0134] In this optional embodiment, when the judgment result indicates that the current operating mode is the target operating mode, it is determined whether the user has input the input temperature value for the target operating mode. If the user inputs the input temperature value for the target operating mode, the operation of obtaining the user's input temperature value for the target operating mode is triggered. If the user does not input the input temperature value for the target operating mode, the memory temperature value corresponding to the target operating mode is obtained. The memory temperature value may represent the last operating temperature value of the air conditioner that was automatically saved when the air conditioner was last turned off. The memory temperature value is determined as the fourth comfort temperature value that matches the user in the first operating stage. This embodiment does not limit this.
[0135] In this optional embodiment, the input path for the air conditioning temperature may optionally include an algorithm input path and a non-algorithm input path. The algorithm input path may include system comfort algorithm input, and the non-algorithm input path may include user input or memory input. Further optionally, the method for determining the user comfort temperature may also include the following operations:
[0136] When the judgment result indicates that the current operating mode is the target operating mode, it is determined whether the input path of the air conditioner temperature includes a non-algorithm input path. If the input path of the air conditioner temperature includes a non-algorithm input path, the operation of determining whether the user has entered the input temperature value for the target operating mode is triggered.
[0137] When the input path for the air conditioning temperature does not include a non-algorithm input path, the algorithm input comfort temperature value corresponding to the non-algorithm input path is determined to be a comfort temperature value that matches the user.
[0138] As can be seen, implementing this optional embodiment can determine the algorithm input comfort temperature value corresponding to the non-algorithm input path to be a comfortable temperature value that matches the user when the input path of the air conditioner temperature does not include the non-algorithm input path. It can automatically set a comfortable temperature value for the user, simplify the user's operation of the air conditioner, adjust the air conditioner temperature for the user, and improve the user's convenience and user experience of using the air conditioner.
[0139] In this optional embodiment, the method for determining the user's comfort temperature may further include the following operations:
[0140] When the judgment result indicates that the current operating mode is not the target operating mode, determine whether there is only one target input path for the air conditioning temperature input path;
[0141] When there is only one target input path for the air conditioner temperature input path, the input temperature value corresponding to that target input path is determined as the comfort temperature value that matches the user.
[0142] When the input path for the air conditioning temperature includes at least one target input path and a user input path, the user input temperature corresponding to the user input path is determined as the comfort temperature value that matches the user.
[0143] As can be seen, implementing this optional embodiment enables the air conditioner to determine a comfortable temperature value that matches the user's temperature input path when the current operating mode of the air conditioner is not the target operating mode. Furthermore, it prioritizes setting the user's input temperature as the comfortable temperature value that matches the user, thereby meeting the user's temperature adjustment needs and allowing the air conditioner to operate according to the user's temperature setting preferences, thus improving the user's convenience and experience in using the air conditioner.
[0144] As can be seen, implementing this optional embodiment can obtain the memory temperature value corresponding to the target operating mode when the user does not input the input temperature value for the target operating mode, and determine the memory temperature value as the fourth comfort temperature value that matches the user in the first operating stage. It can set the last operating temperature value saved when the air conditioner is turned off as the comfort temperature value that matches the user, improve the rationality of the comfort temperature value setting and the degree of matching with the user, and enhance the user's experience of using the air conditioner.
[0145] Example 3
[0146] Please see Figure 4 , Figure 4 This is a schematic diagram of a device for determining user comfort temperature disclosed in an embodiment of the present invention. Figure 4 The device for determining the user's comfortable temperature described may include any one of a user device, a smart server, or a smart platform. The user device includes, but is not limited to, at least one of smart home devices (such as smart air conditioners, smart refrigerators, smart fans, smart TVs, etc.), smartphones (Android phones, iOS phones, etc.), and smart phone watches. The smart server includes a local server or a cloud server; this embodiment of the invention does not limit the scope. Figure 4 As shown, the device for determining the user's comfort temperature may include:
[0147] The acquisition module 301 is used to acquire the current operating mode of the air conditioner when the air conditioner is in operation, and to determine whether the current operating mode is the target operating mode, and to obtain the determination result.
[0148] The acquisition module 301 is also used to acquire the user's input temperature value for the target operating mode and determine the operating stage of the air conditioner in the target operating mode when the judgment result indicates that the current operating mode is the target operating mode;
[0149] The determination module 302 is used to determine a comfortable temperature value that matches the user based on the input temperature value and the operating stage.
[0150] It is evident that implementation Figure 4 The described user comfort temperature determination device can determine a comfortable temperature value that matches the user when the air conditioner is in the target operating mode, based on the user's input temperature value for the target operating mode and the operating stage of the air conditioner in the target operating mode. It can intelligently analyze and determine the user's comfort temperature value, improve the intelligence and accuracy of determining the user's comfort temperature value, and thus help improve the user's comfort and convenience when using the air conditioner.
[0151] In an optional embodiment, such as Figure 5 As shown, the operation phase includes a first operation phase and a second operation phase;
[0152] The specific methods by which module 302 determines a comfortable temperature value that matches the user based on the input temperature value and the operating stage include:
[0153] The system comfort algorithm calculates the user's corresponding algorithm input comfort temperature value based on the preset system comfort algorithm;
[0154] The algorithm determines the operating stage when the user inputs a temperature value. When the user inputs a temperature value and is in the first operating stage, the algorithm determines the input temperature value as the first comfortable temperature value that matches the user in the first operating stage, and determines the algorithm input comfortable temperature value as the second comfortable temperature value that matches the user in the second operating stage. The comfortable temperature value includes the first comfortable temperature value and the second comfortable temperature value.
[0155] When the user inputs a temperature value and the system is in the second operating phase, a third comfortable temperature value matching the user is calculated based on the input temperature value and the algorithm-inputted comfortable temperature value. The comfortable temperature value includes the third comfortable temperature value.
[0156] It is evident that implementation Figure 5 The described user comfort temperature determination device can determine the user's comfort temperature value under different operating stages when the air conditioner is in the target operating mode, based on the operating stage at which the user inputs the temperature value and the user's corresponding algorithmic comfort temperature value calculated according to the preset system comfort algorithm. This improves the intelligence and accuracy of determining the user comfort temperature value, enhances the accuracy of determining the user comfort temperature under different operating modes and the degree of matching with the user, thereby improving the user's comfort and convenience when using the air conditioner.
[0157] In another alternative embodiment, such as Figure 5 As shown, the specific method by which the determining module 302 calculates the third comfort temperature value matching the user in the second operating phase based on the input temperature value and the algorithm input comfort temperature value includes:
[0158] Determine the target operating temperature value corresponding to the second operating stage of the target operating mode;
[0159] Calculate the first temperature difference between the target operating temperature value and the input temperature value based on the target operating temperature value and the input temperature value;
[0160] The algorithm calculates a second temperature difference between the input comfort temperature value and the first temperature difference value, and determines the second temperature difference value as the third comfort temperature value that matches the user in the second operating phase.
[0161] It is evident that implementation Figure 5The described user comfort temperature determination device can calculate a first temperature difference between the target operating temperature and the input temperature based on the target operating temperature and the input temperature. It then calculates a second temperature difference between the input comfort temperature and the first temperature difference, and determines the second temperature difference as a third comfort temperature value that matches the user in the second operating phase. This improves the accuracy and reliability of the calculated comfort temperature value, and enhances the match between the calculated comfort temperature value and the user's temperature comfort requirements, thereby improving the user's comfort and convenience when using the air conditioner.
[0162] In yet another alternative embodiment, such as Figure 5 As shown, the specific method by which the determining module 302 calculates the user's corresponding algorithm input comfort temperature value according to the preset system comfort algorithm includes:
[0163] Obtain the user's historical usage records for the air conditioner, which include the user's historical temperature and physical condition for each use of the air conditioner.
[0164] Based on historical usage records, determine the user's temperature habits for air conditioning under at least one historical physical condition;
[0165] The system obtains the user's current physical condition and comfort needs, and predicts the user's current comfort temperature value for the air conditioner based on the current physical condition and the user's temperature habits for the air conditioner under each historical physical condition.
[0166] Based on the predicted comfort temperature value, current comfort requirements, and the preset system comfort algorithm, the corresponding algorithm input comfort temperature value for the user is calculated.
[0167] It is evident that implementation Figure 5 The described user comfort temperature determination device can determine the user's temperature habits for the air conditioner under at least one historical physical condition based on the user's historical usage records. Based on the user's current physical condition and temperature habits under each historical physical condition, it predicts the user's current comfort temperature value. Then, based on the predicted comfort temperature value, the current comfort requirement, and a preset system comfort algorithm, it calculates the corresponding algorithmic input comfort temperature value for the user. This improves the matching degree between the calculated algorithmic input comfort temperature value and the user's current physical condition and temperature habits, thus improving the accuracy and reliability of the calculated algorithmic input comfort temperature value. This, in turn, improves the accuracy and reliability of subsequent calculations of the user's comfort temperature value.
[0168] In yet another alternative embodiment, such as Figure 5 As shown, the device for determining the user's comfort temperature may further include:
[0169] The judgment module 303 is used to determine whether the user has entered a temperature value for the target operating mode when the judgment result indicates that the current operating mode is the target operating mode. When the user enters a temperature value for the target operating mode, the acquisition module 301 is triggered to perform the operation of acquiring the user's input temperature value for the target operating mode.
[0170] The acquisition module 301 is also used to acquire the memory temperature value corresponding to the target operating mode when the user does not input the input temperature value for the target operating mode, and determine the memory temperature value as the fourth comfort temperature value that matches the user in the first operating stage. The memory temperature value includes the last operating temperature value saved when the air conditioner is turned off.
[0171] It is evident that implementation Figure 5 The described user comfort temperature determination device can obtain the memory temperature value corresponding to the target operating mode when the user does not input the input temperature value for the target operating mode, and determine the memory temperature value as the fourth comfort temperature value that matches the user in the first operating stage. It can set the last operating temperature value saved when the air conditioner is turned off as the comfort temperature value that matches the user, thereby improving the rationality of the comfort temperature value setting and the degree of matching with the user, and enhancing the user's experience of using the air conditioner.
[0172] In yet another alternative embodiment, such as Figure 5 As shown, the device for determining the user's comfort temperature may further include:
[0173] The calculation module 304 is used to calculate the third temperature difference between the target operating temperature value and the algorithm input comfort temperature value, and to determine whether the third temperature difference is less than the preset temperature difference threshold. When the third temperature difference is less than the temperature difference threshold, the determination module 302 is triggered to perform the operation of calculating the first temperature difference between the target operating temperature value and the input temperature value based on the target operating temperature value and the input temperature value.
[0174] The determination module 302 is also used to determine the target operating temperature value as the fifth comfortable temperature value that matches the user in the second operating stage when the third temperature difference is greater than or equal to the temperature difference threshold, and to remind the user of abnormal temperature settings based on the third temperature difference.
[0175] It is evident that implementation Figure 5The described user comfort temperature determination device can determine the target operating temperature as the fifth comfort temperature value matching the user in the second operating stage when the third temperature difference between the target operating temperature value and the algorithm input comfort temperature value is greater than or equal to the temperature difference threshold. It also provides a temperature setting anomaly alert to the user based on the third temperature difference. This reduces the occurrence of large deviations in the determined comfort temperature value matching the user due to large errors in the algorithm input comfort temperature value determination, improving the rationality and reliability of the determined comfort temperature value matching the user. The device also provides anomaly alerts to the user, allowing them to promptly understand the air conditioner's temperature settings, thereby enhancing the user's convenience in using the air conditioner.
[0176] In yet another alternative embodiment, such as Figure 5 As shown, the acquisition module 301 is also used to acquire environmental data of the target environment where the air conditioner is located and the user's location information in the target environment. The environmental data includes the environmental wind speed.
[0177] The device for determining the user's comfort temperature may also include:
[0178] The generation module 305 is used to generate an airflow control strategy for the air conditioner based on the ambient wind speed, location information, and the user's current physical condition.
[0179] The determination module 302 is also used to determine the comprehensive operation control strategy for the air conditioner based on the air outlet control strategy and the comfort temperature value.
[0180] It is evident that implementation Figure 5 The described user comfort temperature determination device can generate an airflow control strategy for the air conditioner based on the ambient wind speed of the target environment, the user's location information in the target environment, and the user's current physical state. Based on the airflow control strategy and the comfort temperature value, it determines a comprehensive operation control strategy for the air conditioner. It can automatically and intelligently generate a comprehensive operation control strategy for the air conditioner for the user, providing a comfortable air conditioning experience and improving the user's comfort and convenience in using the air conditioner.
[0181] Example 4
[0182] Please see Figure 6 , Figure 6 This is a schematic diagram of another user comfort temperature determination device disclosed in an embodiment of the present invention. Figure 6 As shown, the device for determining the user's comfort temperature may include:
[0183] Memory 401 storing executable program code;
[0184] Processor 402 coupled to memory 401;
[0185] The processor 402 calls the executable program code stored in the memory 401 to execute the steps in the method for determining the user comfort temperature described in Embodiment 1 or Embodiment 2 of the present invention.
[0186] Example 5
[0187] This invention discloses a computer storage medium storing computer instructions. When these computer instructions are invoked, they are used to execute the steps in the method for determining user comfort temperature described in Embodiment 1 or Embodiment 2 of this invention.
[0188] Example 6
[0189] This invention discloses a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to cause a computer to perform the steps in the method for determining user comfort temperature described in Embodiment 1 or Embodiment 2.
[0190] The device embodiments described above are merely illustrative. The modules described as separate components may or may not be physically separate. The components shown as modules may or may not be physical modules; that is, they may be located in one place or distributed across multiple network modules. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs. Those skilled in the art can understand and implement this without any creative effort.
[0191] Through the detailed description of the above embodiments, those skilled in the art can clearly understand that each implementation method can be implemented by means of software plus necessary general-purpose hardware platforms, and of course, it can also be implemented by hardware. Based on this understanding, the above technical solutions, in essence or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product can be stored in a computer-readable storage medium, including read-only memory (ROM), random access memory (RAM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), one-time programmable read-only memory (OTPROM), electrically-Erasable Programmable Read-Only Memory (EEPROM), compact disc read-only memory (CD-ROM) or other optical disc storage, disk storage, magnetic tape storage, or any other computer-readable medium that can be used to carry or store data.
[0192] Finally, it should be noted that the method and apparatus for determining user comfort temperature disclosed in the embodiments of the present invention are merely preferred embodiments of the present invention and are only used to illustrate the technical solutions of the present invention, not to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A method for determining a user comfort temperature, characterized in that, The method includes: When the air conditioner is running, the current operating mode of the air conditioner is obtained, and it is determined whether the current operating mode is the target operating mode, and the determination result is obtained. When the judgment result indicates that the current operating mode is the target operating mode, the user's input temperature value for the target operating mode is obtained, and the operating stage of the air conditioner in the target operating mode is determined; Based on the input temperature value and the operating stage, a comfortable temperature value matching the user is determined.
2. The method for determining user comfort temperature according to claim 1, characterized in that, The operation phase includes a first operation phase and a second operation phase; Determining a comfortable temperature value matching the user based on the input temperature value and the operating stage includes: The system comfort algorithm calculates the corresponding algorithm input comfort temperature value for the user based on the preset system comfort algorithm; The algorithm determines the operating stage when the user inputs the temperature value. When the user is in the first operating stage, the algorithm determines the input temperature value as the first comfortable temperature value that matches the user in the first operating stage, and determines the algorithm input comfortable temperature value as the second comfortable temperature value that matches the user in the second operating stage. The comfortable temperature value includes the first comfortable temperature value and the second comfortable temperature value. When the user inputs the input temperature value and is in the second operating phase, a third comfortable temperature value matching the user in the second operating phase is calculated based on the input temperature value and the algorithm input comfortable temperature value. The comfortable temperature value includes the third comfortable temperature value.
3. The method for determining user comfort temperature according to claim 2, characterized in that, The step of calculating a third comfortable temperature value matching the user in the second operating phase based on the input temperature value and the algorithm-input comfortable temperature value includes: Determine the target operating temperature value corresponding to the second operating stage of the target operating mode; Calculate the first temperature difference between the target operating temperature value and the input temperature value based on the target operating temperature value and the input temperature value; Calculate a second temperature difference between the algorithm input comfort temperature value and the first temperature difference value, and determine the second temperature difference value as a third comfort temperature value that matches the user in the second operating phase.
4. The method for determining user comfort temperature according to claim 2 or 3, characterized in that, The step of calculating the user's corresponding algorithm input comfort temperature value according to a preset system comfort algorithm includes: Obtain the user's historical usage records for the air conditioner, including the user's historical temperature and historical physical condition for each use of the air conditioner; Based on the historical usage records, determine the user's temperature habits for the air conditioner under at least one historical physical condition; The system obtains the user's current physical state and the user's current comfort needs, and predicts the user's current comfort temperature value for the air conditioner based on the current physical state and the user's temperature habits for the air conditioner under each of the historical physical states. Based on the predicted comfort temperature value, the current comfort requirements, and the preset system comfort algorithm, the algorithm input comfort temperature value corresponding to the user is calculated.
5. The method for determining user comfort temperature according to claim 2 or 3, characterized in that, The method further includes: When the determination result indicates that the current operating mode is the target operating mode, it is determined whether the user has input the input temperature value for the target operating mode. When the user inputs the input temperature value for the target operating mode, the operation of obtaining the user's input temperature value for the target operating mode is triggered. When the user does not input the input temperature value for the target operating mode, the memory temperature value corresponding to the target operating mode is obtained, and the memory temperature value is determined as the fourth comfort temperature value that matches the user in the first operating stage. The memory temperature value includes the last operating temperature value saved when the air conditioner is turned off.
6. The method for determining user comfort temperature according to claim 3, characterized in that, The method further includes: Calculate the third temperature difference between the target operating temperature value and the comfort temperature value input by the algorithm, and determine whether the third temperature difference is less than a preset temperature difference threshold. When the third temperature difference is less than the temperature difference threshold, the operation of calculating the first temperature difference between the target operating temperature value and the input temperature value based on the target operating temperature value and the input temperature value is triggered. When the third temperature difference is greater than or equal to the temperature difference threshold, the target operating temperature value is determined as the fifth comfortable temperature value that matches the user in the second operating phase, and the user is given an abnormal temperature setting reminder based on the third temperature difference.
7. The method for determining user comfort temperature according to claim 4, characterized in that, The method further includes: The system acquires environmental data of the target environment where the air conditioner is located and the location information of the user in the target environment, wherein the environmental data includes the ambient wind speed. An airflow control strategy for the air conditioner is generated based on the ambient wind speed, the location information, and the user's current physical condition. Based on the air outlet control strategy and the comfort temperature value, a comprehensive operation control strategy for the air conditioner is determined.
8. A device for determining a user's comfortable temperature, characterized in that, The device includes: The acquisition module is used to acquire the current operating mode of the air conditioner when the air conditioner is in operation, and to determine whether the current operating mode is the target operating mode, and to obtain the determination result. The acquisition module is further configured to acquire the user's input temperature value for the target operating mode and determine the operating stage of the air conditioner in the target operating mode when the judgment result indicates that the current operating mode is the target operating mode; The determination module is used to determine a comfortable temperature value that matches the user based on the input temperature value and the operating stage.
9. A device for determining user comfort temperature, characterized in that, The device includes: Memory containing executable program code; A processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the method for determining the user comfort temperature as described in any one of claims 1-7.
10. A computer storage medium, characterized in that, The computer storage medium stores computer instructions, which, when invoked, are used to execute the method for determining the user comfort temperature as described in any one of claims 1-7.