Smart home appliance control method, apparatus, device, and computer storage medium
By obtaining the moisture content of users' pores, the cooling mode of smart home appliances is adjusted, solving the problem of the lack of intelligence in air conditioner cooling temperature regulation, reducing the risk of air conditioning sickness, and improving the user experience.
Patent Information
- Application Number
- CN202311063635.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-08-22
- Publication Date
- 2026-01-20
- Estimated Expiration
- 2043-08-22
AI Technical Summary
The lack of intelligent temperature control in air conditioners leads to users being exposed to a constant temperature for extended periods, making them susceptible to "air conditioning sickness" and resulting in a poor user experience.
By obtaining the user's pore moisture content, the system determines the user's perceived physical state and adjusts the target cooling mode of smart home appliances, including cooling speed and frequency, based on the perceived physical state and the current cooling mode, in order to achieve intelligent control of the temperature in the user's space.
It reduces the probability of air conditioning sickness, improves the functionality and user experience of smart air conditioners, and protects human health.
Smart Images

Figure CN119508980B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application belongs to the technical field of intelligent household appliances, and particularly relates to an intelligent household appliance control method, device, equipment and computer storage medium. BACKGROUND
[0002] With the continuous development of science and technology, the functions of intelligent household appliances are also constantly updated. In order to meet the increasing demand of people for life, various intelligent household appliances are constantly updated.
[0003] Among them, the emergence of air conditioners enables users to cope with hot or cold environments and provides users with a constant temperature use environment. Generally, when the room temperature is maintained at 28-29 degrees and the humidity is maintained at 40-60%, the user will not feel hot and will not sweat, which belongs to the comfort range.
[0004] However, with the popularization of air conditioners and the rise of global temperature, the incidence of air conditioner disease is on the rise, especially in summer. In order to cope with the hot environment, the time and frequency of using air conditioners by most users increases, and the adjustment of the cooling temperature of the air conditioner lacks intelligence when the user uses the air conditioner, which easily leads to air conditioner disease and poor user experience. SUMMARY
[0005] The application provides an intelligent household appliance control method, device, equipment and computer storage medium to solve the defects that the user is easily affected by air conditioner disease when using the air conditioner to cool and the adjustment of the cooling temperature of the air conditioner lacks intelligence.
[0006] In a first aspect, the application provides an intelligent household appliance control method, comprising:
[0007] obtaining the pore moisture content of the user and the current cooling mode of the intelligent household appliance;
[0008] determining the thermal sensation state of the user according to the pore moisture content and a preset moisture content, the thermal sensation state being used to indicate the body perception of the user in the current cooling mode;
[0009] determining the target cooling mode of the intelligent household appliance according to the thermal sensation state and the current cooling mode;
[0010] controlling the intelligent household appliance to perform cooling processing according to the target cooling mode.
[0011] Optionally, the thermal sensation state comprises a first thermal sensation state, a second thermal sensation state and a third thermal sensation state, and the determination of the thermal sensation state of the user according to the pore moisture content and the preset moisture content comprises:
[0012] determining whether the pore moisture content is greater than the preset moisture content;
[0013] If yes, the somatic state of the user is determined as a first somatic state;
[0014] If no, it is determined whether the pore moisture content is less than the preset moisture content;
[0015] When the pore moisture content is less than the preset moisture content, the somatic state of the user is determined as a second somatic state;
[0016] When the pore moisture content is not less than the preset moisture content, the somatic state of the user is determined as a third somatic state.
[0017] Optionally, if the somatic state is the first somatic state, the target refrigeration mode of the smart home appliance is determined according to the somatic state and the current refrigeration mode, including:
[0018] According to the current refrigeration mode, a current refrigeration speed and a current refrigeration frequency corresponding to the current refrigeration mode are determined;
[0019] According to the current refrigeration speed and a first preset speed, a first refrigeration speed is determined;
[0020] According to the current refrigeration frequency and a first preset frequency, a first refrigeration frequency is determined, wherein the first refrigeration speed is greater than the current refrigeration speed, and the first refrigeration frequency is greater than the current refrigeration frequency;
[0021] According to the first refrigeration speed and the first refrigeration frequency, a target refrigeration mode is obtained.
[0022] Optionally, if the somatic state is the second somatic state, the target refrigeration mode of the smart home appliance is determined according to the somatic state and the current refrigeration mode, including:
[0023] According to the current refrigeration mode, a current refrigeration speed and a current refrigeration frequency corresponding to the current refrigeration mode are determined;
[0024] According to the current refrigeration speed and a second preset speed, a second refrigeration speed is determined;
[0025] According to the current refrigeration frequency and a second preset frequency, a second refrigeration frequency is determined, wherein the second refrigeration speed is less than the current refrigeration speed, and the second refrigeration frequency is less than the current refrigeration frequency;
[0026] According to the second refrigeration speed and the second refrigeration frequency, a target refrigeration mode is obtained.
[0027] Optionally, the control of the smart home appliance to perform refrigeration processing according to the target refrigeration mode includes:
[0028] determining a preset time length for running the target refrigeration mode according to the target refrigeration mode, the pore water content and the preset water content;
[0029] controlling the smart home appliance to perform refrigeration processing according to the refrigeration rotating speed and the refrigeration frequency corresponding to the target refrigeration mode within the preset time length.
[0030] Optionally, after the controlling the smart home appliance to perform refrigeration processing according to the refrigeration rotating speed and the refrigeration frequency corresponding to the target refrigeration mode within the preset time length, the method further comprises:
[0031] reacquiring the pore water content of the user and determining whether the new pore water content is equal to the preset water content;
[0032] if yes, controlling the smart home appliance to continue performing refrigeration processing according to the target refrigeration mode;
[0033] if no, determining a new target refrigeration mode according to the body feeling state and the target refrigeration mode, and controlling the smart home appliance to perform refrigeration processing according to the new target refrigeration mode.
[0034] Optionally, the determining a new target refrigeration mode according to the body feeling state and the target refrigeration mode comprises:
[0035] if the body feeling state is a first body feeling state, re-determining a new first refrigeration rotating speed according to the first refrigeration rotating speed and a first preset rotating speed;
[0036] re-determining a new first refrigeration frequency according to the first refrigeration frequency and a first preset frequency, wherein the new first refrigeration rotating speed is greater than the old first refrigeration rotating speed, and the new first refrigeration frequency is greater than the old first refrigeration frequency;
[0037] obtaining a new target refrigeration mode according to the new first refrigeration rotating speed and the new first refrigeration frequency;
[0038] if the body feeling state is a second body feeling state, re-determining a new second refrigeration rotating speed according to the second refrigeration rotating speed and a second preset rotating speed;
[0039] re-determining a new second refrigeration frequency according to the second refrigeration frequency and a second preset frequency, wherein the new second refrigeration rotating speed is less than the old second refrigeration rotating speed, and the new second refrigeration frequency is less than the old second refrigeration frequency;
[0040] obtaining a new target refrigeration mode according to the new second refrigeration rotating speed and the new second refrigeration frequency.
[0041] In a second aspect, the present application provides a smart home appliance control device, comprising:
[0042] an acquisition module configured to acquire a user's pore water content and a current refrigeration mode of a smart home appliance.
[0043] a determination module configured to determine a thermal state of the user according to the pore water content and a preset water content, the thermal state being used to indicate a body perception condition of the user under the current refrigeration mode.
[0044] The determination module is further configured to determine a target refrigeration mode of the smart home appliance according to the thermal state and the current refrigeration mode.
[0045] a control module configured to control the smart home appliance to perform refrigeration processing according to the target refrigeration mode.
[0046] Optionally, the smart home appliance control device further comprises a judgment module.
[0047] The judgment module is configured to judge whether the pore water content is greater than the preset water content.
[0048] If the pore water content is greater than the preset water content, the determination module is further configured to determine that the thermal state of the user is a first thermal state.
[0049] If the pore water content is not greater than the preset water content, the judgment module is further configured to judge whether the pore water content is less than the preset water content.
[0050] The determination module is further configured to determine that the thermal state of the user is a second thermal state when the pore water content is less than the preset water content.
[0051] The determination module is further configured to determine that the thermal state of the user is a third thermal state when the pore water content is not less than the preset water content.
[0052] Optionally, the determination module is further configured to determine a current refrigeration rotating speed and a current refrigeration frequency corresponding to the current refrigeration mode according to the current refrigeration mode.
[0053] The determination module is further configured to determine a first refrigeration rotating speed according to the current refrigeration rotating speed and a first preset rotating speed.
[0054] The determination module is further configured to determine a first refrigeration frequency according to the current refrigeration frequency and a first preset frequency, wherein the first refrigeration rotating speed is greater than the current refrigeration rotating speed, and the first refrigeration frequency is greater than the current refrigeration frequency.
[0055] The obtaining module is further configured to obtain a target refrigeration mode according to the first refrigeration rotating speed and the first refrigeration frequency.
[0056] Optionally, the determining module is further configured to determine a second refrigeration rotating speed according to the current refrigeration rotating speed and a second preset rotating speed.
[0057] The determining module is further configured to determine a second refrigeration frequency according to the current refrigeration frequency and a second preset frequency, wherein the second refrigeration rotating speed is less than the current refrigeration rotating speed, and the second refrigeration frequency is less than the current refrigeration frequency.
[0058] The obtaining module is further configured to obtain a target refrigeration mode according to the second refrigeration rotating speed and the second refrigeration frequency.
[0059] Optionally, the determining module is further configured to determine a preset time length for which the target refrigeration mode runs according to the target refrigeration mode, the pore water content, and the preset water content.
[0060] The control module is specifically configured to control the smart home appliance to perform refrigeration processing according to a refrigeration rotating speed and a refrigeration frequency corresponding to the target refrigeration mode within the preset time length.
[0061] Optionally, the obtaining module is further configured to re-obtain the pore water content of the user.
[0062] The determining module is further configured to determine whether a new pore water content is equal to the preset water content.
[0063] If the new pore water content is equal to the preset water content, the control module is specifically configured to control the smart home appliance to continue refrigeration processing according to the target refrigeration mode.
[0064] If the new pore water content is not equal to the preset water content, the determining module is further configured to determine a new target refrigeration mode according to the body feeling state and the target refrigeration mode.
[0065] The control module is specifically configured to control the smart home appliance to perform refrigeration processing according to the new target refrigeration mode.
[0066] Optionally, if the body feeling state is a first body feeling state, the determining module is further configured to re-determine a new first refrigeration rotating speed according to the first refrigeration rotating speed and a first preset rotating speed.
[0067] The determining module is further configured to re-determine a new first refrigeration frequency according to the first refrigeration frequency and a first preset frequency, wherein the new first refrigeration rotating speed is greater than an old first refrigeration rotating speed, and the new first refrigeration frequency is greater than an old first refrigeration frequency.
[0068] The acquisition module is further configured to obtain a new target refrigeration mode according to the new first refrigeration rotating speed and the new first refrigeration frequency.
[0069] If the somatic state is a second somatic state, the determination module is further configured to re-determine a new second refrigeration rotating speed according to the second refrigeration rotating speed and a second preset rotating speed.
[0070] The determination module is further configured to re-determine a new second refrigeration frequency according to the second refrigeration frequency and a second preset frequency, wherein the new second refrigeration rotating speed is less than an old second refrigeration rotating speed, and the new second refrigeration frequency is less than an old second refrigeration frequency.
[0071] The acquisition module is further configured to obtain a new target refrigeration mode according to the new second refrigeration rotating speed and the new second refrigeration frequency.
[0072] In a third aspect, the present application provides a smart home appliance control device, comprising:
[0073] a memory;
[0074] a processor;
[0075] The memory stores computer execution instructions.
[0076] The processor executes the computer execution instructions stored in the memory to implement the smart home appliance control method as described in the first aspect and various possible implementation manners of the first aspect.
[0077] In a fourth aspect, the present application provides a computer storage medium having computer execution instructions stored thereon, and the computer execution instructions are executed by a processor to implement the smart home appliance control method as described in the first aspect and various possible implementation manners of the first aspect.
[0078] The smart home appliance control method provided by the present application acquires the user's pore water content and the current refrigeration mode of the smart home appliance; determines the user's somatic state according to the pore water content and a preset water content; determines the target refrigeration mode of the smart home appliance according to the somatic state and the current refrigeration mode, and controls the smart home appliance to perform refrigeration processing according to the target refrigeration mode. This method realizes intelligent control of the temperature of the space where the user is located, minimizes the negative impact of the long-term operation of the smart air conditioner on human health, reduces the probability of the user suffering from air conditioner disease, improves the functionality and intelligence of the smart air conditioner, and improves the user experience. BRIEF DESCRIPTION OF DRAWINGS
[0079] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and serve to explain the principles of the present application together with the specification.
[0080] Figure 1 is a scene schematic diagram of the intelligent household appliance control method provided by the present application;
[0081] Figure 2 is a flow of the intelligent household appliance control method provided by the present application Figure 1 ;
[0082] Figure 3 is a flow of the intelligent household appliance control method provided by the present application Figure 2 ;
[0083] Figure 4 is a structure schematic diagram of the intelligent household appliance control device provided by the present application;
[0084] Figure 5 is a structure schematic diagram of the intelligent household appliance control device provided by the present application.
[0085] Through the above-mentioned drawings, the explicit embodiments of the present application have been shown, and will be described in more detail hereinafter. These drawings and textual descriptions are not intended to limit the scope of the concept of the present application by any means, but to illustrate the concept of the present application to those skilled in the art by referring to specific embodiments. DETAILED DESCRIPTION
[0086] In order to make the objects, technical solutions and advantages of the present application clearer, the technical solutions of the present application will be described clearly and completely in combination with the drawings in the present application. Apparently, the described embodiments are only some of the embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.
[0087] The terms "first", "second", "third", "fourth" and the like (if any) in the specification and claims of the present application and the above-mentioned drawings are used to distinguish similar objects, and do not necessarily have to be used to describe a specific order or sequence. It should be understood that the data thus used can be interchanged under appropriate circumstances, so that the embodiments of the present application described herein can be implemented in an order other than that illustrated or described herein.
[0088] In the embodiments of the present application, the words "exemplary" or "for example" are used to mean example, illustration, or description. Any embodiment or design solution described as "exemplary" or "for example" in the present application should not be interpreted as more preferred or more advantageous than other embodiments or design solutions. Rather, the use of "exemplary" or "for example" is intended to present the relevant concept in a specific manner.
[0089] It should be noted that the user information (including but not limited to user equipment information, user personal information, etc.) and data (including but not limited to data for analysis, stored data, displayed data, etc.) involved in the present application are all information and data authorized by the user or authorized by all parties, and the collection, use and processing of related data need to comply with relevant laws, regulations and standards of relevant countries and regions, and provide corresponding operation portal for user to choose authorization or refusal.
[0090] With the continuous development of science and technology, the functions of intelligent household appliances are also constantly updated. In order to meet the increasing demand of people for life, various intelligent household appliances are constantly updated.
[0091] Among them, the emergence of air conditioners enables users to cope with hot or cold environments and provides a constant temperature use environment for users. Generally, when the room temperature is maintained at 28-29 degrees and the humidity is maintained at 40-60%, the user will not feel hot and will not sweat, which belongs to the comfort range.
[0092] However, with the popularization of air conditioners and the rise of global temperature, the incidence of air conditioner disease is on the rise, especially in summer. In order to cope with the hot environment, most users increase the time and frequency of using air conditioners, and lack of intelligence in adjusting the cooling temperature of the air conditioner when the user uses the air conditioner, which can easily lead to air conditioner disease and poor user experience.
[0093] In view of the above problems, the present application provides an intelligent household appliance control method.
[0094] Firstly, the implementation scenario involved in the present application is explained.
[0095] With the development of the Internet of Things, Internet of Things technology is applied to various fields, among which the most closely related to us should be smart home. Smart home connects multiple smart household appliances together through Internet of Things technology to realize information sharing. Therefore, smart household appliances can obtain user information in other smart devices through internal Internet of Things, and provide more intelligent and automated services for users according to user information.
[0096] As shown in Figure 1 The smart wearable device 1 is in communication connection with the smart household appliance 2. The smart wearable device 1 can obtain user information in the current environment state, and the smart household appliance 2 can obtain user information sent by the smart wearable device 1. For example, the smart wearable device 1 can be a smart bracelet, which can obtain user information and send the state information to other devices in communication connection with the smart bracelet; through internal network connection to realize information sharing, the smart household appliance can obtain the user information sent by the smart bracelet. The type of smart wearable device is not specially limited in the present application.
[0097] The intelligent household appliance control method provided in the application obtains the pore water content of a user through a smart wearable device, so as to determine the current thermal sensation state of the user; according to different thermal sensation states of the user, the intelligent household appliance is controlled to use different refrigeration modes for refrigeration; the speed and frequency of the intelligent household appliance are adjusted to control the change of the refrigeration amount of the intelligent household appliance, so that the most comfortable refrigeration state acceptable to the user is achieved. The method realizes intelligent control of the temperature of the space where the user is located, minimizes the negative impact of the long-term operation of the intelligent air conditioner on human health, reduces the probability of the user suffering from air conditioner disease, improves the functionality and intelligence of the intelligent air conditioner, and improves the user experience.
[0098] The technical solutions of the application and how the technical solutions solve the above technical problems will be described in detail below with specific embodiments. The following specific embodiments can be combined with each other, and the same or similar concepts or processes can not be described again in some embodiments. The embodiments of the application will be described below with reference to the drawings.
[0099] Figure 2 The flow of the intelligent household appliance control method provided in the embodiments of the application Figure 1 The execution subject of the embodiment can be, for example, a control device of an intelligent household appliance. As shown in Figure 2 The intelligent household appliance control method provided in the embodiment includes the following steps.
[0100] S201: Obtain the pore water content of a user and the current refrigeration mode of an intelligent household appliance.
[0101] The pore water content is used to indicate the moisture content of the surface of the body of the user that can be detected by the smart wearable device.
[0102] It can be understood that the pore water content of the user is affected by the humidity of the external environment and the metabolism of the user, wherein the humidity of the external environment refers to the humidity of the environment of the space where the intelligent household appliance is located, and the suitable humidity that makes the user feel comfortable is between 40% and 60%.
[0103] The body state of the user is detected through the smart wearable device, and the current pore water content of the user is obtained according to the detection result; after the current pore water content of the user is obtained, the current refrigeration mode of the intelligent household appliance is obtained.
[0104] For example, the user is detected through a smart bracelet, and the pore water content of the user obtained by detection can be 40%, and the current refrigeration mode can be "standard refrigeration, 27℃".
[0105] S202: Determine the thermal sensation state of the user according to the pore water content and the preset water content.
[0106] The body feeling state is used to indicate the user's body perception in the current cooling mode, and the preset water content is used to indicate the skin moisture content that makes the user feel comfortable, for example, the preset water content can be 50%.
[0107] According to the obtained pore water content and the preset water content, the user's current pore water content is compared with the preset water content, and according to the comparison result, the user's current body feeling state can be determined.
[0108] It can be understood that the user's pore water content detected by the smart wearable device is real-time change, and different pore water contents indicate that the user is in different body feeling states. If the user's pore water content is high, the user's body feeling state is in a wet state; if the user's pore water content is low, the user's body feeling state is in a dry state; if the user's pore water content is basically consistent with the preset water content, the user's body feeling state is in a comfortable state.
[0109] For example, if the user's current pore water content is 40%, 40%<50%, at this time it can be determined that the user's body feeling state is in a dry state; if the user's current pore water content is 50%, 50%=50%, at this time it can be determined that the user's body feeling state is in a comfortable state; if the user's current pore water content is 60%, 60%>50%, at this time it can be determined that the user's body feeling state is in a wet state.
[0110] S203: According to the body feeling state and the current cooling mode, determine the target cooling mode of the smart home appliance.
[0111] The external environment humidity and the user's pore water content have a correlation relationship, and the external environment humidity can be controlled by controlling the operation of the smart home appliance in different cooling modes, thereby affecting the user's pore water content.
[0112] It can be understood that because the human body's breathing and sweating will release water, if the external environment humidity is too high, the human body's skin sweating will be hindered, causing the sweat to not evaporate in time, making people feel hot and stuffy, affecting the health; if the external environment humidity is too low, it will cause the user's respiratory mucosa and skin to be too dry, causing symptoms such as dry mouth, dry tongue, and dry eyes; at the same time, very low humidity will also make bacteria and viruses in the air stronger, which may cause infectious diseases; therefore, if the user stays in a non-comfortable humidity environment for a long time, it will cause the user's pore water content to be too high or too low, which will adversely affect the user's health.
[0113] Based on the user's current perceived temperature, determine the direction for adjusting the current cooling mode of the smart home appliance. While the smart home appliance is operating in its current cooling mode, adjust the current cooling mode according to the determined direction, and set the adjusted cooling mode as the target cooling mode. The adjustment direction may include, for example, improving the cooling effect, maintaining the current cooling effect, or reducing the cooling effect.
[0114] For example, if the user's current physical state is humid, it is necessary to reduce the moisture content of the user's pores; if the current cooling mode is "standard cooling, 27℃", it means that it is necessary to improve the cooling effect of smart home appliances, increase the cooling capacity, and reduce the ambient humidity of the space where smart home appliances are located. At this time, the cooling mode can be adjusted to "standard cooling, 21℃", and this cooling mode is the target cooling mode.
[0115] S204: Control the smart home appliance to perform cooling according to the target cooling mode.
[0116] Based on the user's current physical state, the cooling mode of the smart home appliance is adjusted to determine the cooling mode that will make the user feel comfortable, i.e., the target cooling mode. The smart home appliance is then controlled to perform cooling according to the target cooling mode, thereby adjusting the ambient humidity of the space where the smart home appliance is located, so that the user's pore moisture content can reach the preset moisture content.
[0117] For example, if the current cooling mode is "Standard cooling, 27℃" and the target cooling mode is "Standard cooling, 21℃", then the smart home appliance will be controlled to perform cooling treatment with 21℃ as the cooling target.
[0118] The smart home appliance control method provided in this embodiment obtains the user's pore moisture content and the current cooling mode of the smart home appliance; determines the user's perceived body state based on the pore moisture content and a preset moisture content; determines the target cooling mode of the smart home appliance based on the perceived body state and the current cooling mode, and controls the smart home appliance to perform cooling according to the target cooling mode. This method achieves intelligent control of the temperature in the user's space, minimizing the negative impact of long-term operation of the smart air conditioner on human health, reducing the probability of users suffering from air conditioning sickness, improving the functionality and intelligence of the smart air conditioner, and enhancing the user experience.
[0119] Figure 3 Flowchart of the smart home appliance control method provided in the embodiments of this application Figure 2 .like Figure 3 As shown, in this embodiment... Figure 4 Based on the embodiments, the intelligent home appliance control method is described in detail. The intelligent home appliance control method shown in this embodiment includes:
[0120] S301: Obtain the pore moisture content of the user and the current refrigeration mode of the smart home appliance.
[0121] Step S301 is similar to step S201 described above, and will not be described here.
[0122] S302: Determine whether the pore moisture content is greater than the preset moisture content; if yes, execute step S303; if no, execute step S308.
[0123] Among them, the first body feeling state is used to indicate that the user's current body surface perceives a high moisture content.
[0124] The purpose of this step is to determine whether the user's current body feeling state is in a comfortable state.
[0125] If the user's pore moisture content is greater than the preset moisture content, it indicates that the user's current body surface moisture content is high, and the environmental humidity of the space where the user is located is high, at which time the user's body feeling state is determined to be the first body feeling state.
[0126] If the user's pore moisture content is not greater than the preset moisture content, it indicates that the user's current body surface moisture content is not high, and the user's current environment is not humid, but it cannot be determined whether the user feels comfortable at the current pore moisture content, at which time it is necessary to determine whether the pore moisture content is less than the preset moisture content to further determine the user's current body feeling state.
[0127] For example, if the user's pore moisture content is 70%, 70%>50%, it indicates that the user's current body surface moisture content is high, and the environment where the user is located is in a humid state, at which time the user's body feeling state is determined to be the first body feeling state, i.e. the user's current body feeling state is in a humid state; if the user's pore moisture content is 40%, it indicates that the user's current body surface moisture content is not high, and the environment where the user is located is not in a humid state, but it cannot be determined whether the user feels comfortable at the current pore moisture content, at which time the user's current pore moisture content needs to be further determined to determine the user's body feeling state at the current pore moisture content.
[0128] S303: Determine that the user's body feeling state is the first body feeling state.
[0129] S304: According to the current refrigeration mode, determine the current refrigeration speed and the current refrigeration frequency corresponding to the current refrigeration mode.
[0130] Among them, the refrigeration speed is used to indicate the motor speed of the smart home appliance during refrigeration, and the refrigeration frequency is used to indicate the power supply frequency of the smart home appliance during refrigeration.
[0131] It can be understood that the parameters affecting the refrigeration efficiency of the smart home appliance mainly include the refrigeration rotation speed and the refrigeration frequency when the smart home appliance performs the refrigeration process. Therefore, the refrigeration rotation speed and the refrigeration frequency of the motor can be controlled to change, so that the smart home appliance performs the refrigeration process in different refrigeration modes.
[0132] For example, if the current refrigeration mode is "standard refrigeration, 27℃", the corresponding refrigeration rotation speed is 50 revolutions / second, and the refrigeration frequency is 50 Hz.
[0133] S305: determining a first refrigeration rotation speed according to the current refrigeration rotation speed and a first preset rotation speed.
[0134] S306: determining a first refrigeration frequency according to the current refrigeration frequency and a first preset frequency.
[0135] The first refrigeration rotation speed is greater than the current refrigeration rotation speed, and the first refrigeration frequency is greater than the current refrigeration frequency. The first preset rotation speed may be, for example, 5 revolutions / second, and the first preset frequency may be, for example, 5 Hz.
[0136] When the user's body feeling state is the first body feeling state, it can be determined that the user's current environment is in a humid state, and the user's pore water content is high. At this time, it is necessary to improve the refrigeration effect of the smart home appliance to reduce the user's pore water content. Therefore, the first preset rotation speed is used to adjust the current refrigeration rotation speed, and the adjusted refrigeration rotation speed is determined as the first refrigeration rotation speed. The first preset frequency is used to adjust the current refrigeration frequency, and the adjusted refrigeration frequency is determined as the first refrigeration frequency.
[0137] It can be understood that the first refrigeration rotation speed is the calculation result of the current refrigeration rotation speed and the first preset rotation speed. The calculation method may be, for example, adding the current refrigeration rotation speed and the first preset rotation speed, or adding a multiple value of the current refrigeration rotation speed and the first preset rotation speed. According to the calculation result, the first refrigeration rotation speed can be obtained. Regardless of the calculation method used to determine the first refrigeration rotation speed, the final obtained refrigeration rotation speed is greater than the current refrigeration rotation speed, and can achieve the effect of reducing the humidity value of the space where the smart home appliance is located. The calculation method of the first refrigeration frequency is consistent with that of the first refrigeration rotation speed.
[0138] The application does not make special limitations on the determination method of the first refrigeration rotation speed and the first refrigeration frequency.
[0139] For example, if the current refrigeration rotation speed is 50 revolutions / second and the current refrigeration frequency is 50 Hz, the first preset rotation speed 5 revolutions / second and the first preset frequency 5 Hz are used to calculate the current refrigeration rotation speed and the current refrigeration frequency. The corresponding preset value is added to the current obtained refrigeration parameter value, and the obtained first refrigeration rotation speed can be 55 revolutions / second, and the first refrigeration frequency can be 55 Hz.
[0140] S307: Obtain a target refrigeration mode according to the first refrigeration rotating speed and the first refrigeration frequency.
[0141] The target refrigeration mode is used to indicate a refrigeration mode of the smart home appliance determined according to the real-time pore water content of the user, which can make the user in a comfortable state.
[0142] After the first refrigeration rotating speed and the first refrigeration frequency required by the smart home appliance are determined, the current refrigeration rotating speed and the current refrigeration frequency are replaced by the first refrigeration rotating speed and the first refrigeration frequency, so as to update the refrigeration mode of the smart home appliance, and the updated refrigeration mode is the target refrigeration mode.
[0143] For example, if the current refrigeration rotating speed is 50 revolutions / second, the current refrigeration frequency is 50 Hz, the first refrigeration rotating speed is 55 revolutions / second, and the first refrigeration frequency is 55 Hz, the two refrigeration parameters of “50 revolutions / second” and “50 Hz” are replaced by “55 revolutions / second” and “55 Hz” respectively, and the updated refrigeration mode of the smart home appliance is “55 revolutions / second, 55 Hz”, and the refrigeration mode is the target refrigeration mode.
[0144] S308: Determine whether the pore water content is less than the preset water content; if yes, execute step S309; if no, execute step S314.
[0145] The second body feeling state is used to indicate that the water content perceived by the user's body surface is low, and the third body feeling state is used to indicate that the water content perceived by the user's body surface will not have a negative impact on the user.
[0146] The purpose of this step is to determine whether the user's current body feeling state is in a comfortable state.
[0147] If the pore water content of the user is less than the preset water content, it indicates that the water content of the user's body surface is low, and the environmental humidity of the space where the user is located is low, and at this time, the body feeling state of the user is determined as the second body feeling state.
[0148] If the pore water content of the user is not less than the preset water content, it indicates that the water content of the user's body surface is moderate, and the environmental humidity of the space where the user is located is comfortable, and at this time, the body feeling state of the user is determined as the third body feeling state.
[0149] For example, if the user's pore moisture content is 40%, 40% < 50%, it indicates that the user's current body surface moisture content is low, and the user's environment is dry. At this time, it is determined that the user's thermal state is the second thermal state, i.e., the user's current thermal state is dry; if the user's pore moisture content is 50%, 50% = 50%, it indicates that the user's current body surface moisture content is moderate, and the user's environment is comfortable. At this time, it is determined that the user's thermal state is the third thermal state, i.e., the user's current thermal state is comfortable.
[0150] S309: determining that the user's thermal state is the second thermal state.
[0151] S310: determining a current refrigeration speed and a current refrigeration frequency corresponding to the current refrigeration mode according to the current refrigeration mode.
[0152] Step S310 is similar to step S304 described above, and will not be described here.
[0153] S311: determining a second refrigeration speed according to the current refrigeration speed and a second preset speed.
[0154] S312: determining a second refrigeration frequency according to the current refrigeration frequency and a second preset frequency.
[0155] The second refrigeration speed is less than the current refrigeration speed, and the second refrigeration frequency is less than the current refrigeration frequency. The second preset speed may be, for example, 5 revolutions per second, and the second preset frequency may be, for example, 5 Hz.
[0156] It can be understood that the first preset speed and the second preset speed can be equal or not equal; the first preset frequency and the second preset speed can be equal or not equal; the preset speed and the preset frequency are used to adjust the refrigeration speed and the refrigeration frequency of the intelligent household appliance, and the specific values can change according to the user's current environment and the user's pore moisture content.
[0157] When the user's thermal state is the second thermal state, it can be determined that the user's current environment is dry, and the user's pore moisture content is low. At this time, it is necessary to reduce the refrigeration effect of the intelligent household appliance to improve the user's pore moisture content. Therefore, the current refrigeration speed is adjusted using the second preset speed, and the adjusted refrigeration speed is determined as the second refrigeration speed. The current refrigeration frequency is adjusted using the second preset frequency, and the adjusted refrigeration frequency is determined as the second refrigeration frequency.
[0158] It can be understood that the second refrigeration rotation speed is the calculation result of the current refrigeration rotation speed and the second preset rotation speed, and the calculation method may be, for example, subtracting the current refrigeration rotation speed from the second preset rotation speed or subtracting the multiple value of the current refrigeration rotation speed from the second preset rotation speed; according to the calculation result, the second refrigeration rotation speed can be obtained; no matter which calculation method is used to determine the second refrigeration rotation speed, the final obtained refrigeration rotation speed is smaller than the current refrigeration rotation speed, and the effect of improving the humidity value of the space where the intelligent household appliance is located can be achieved; and the calculation method of the second refrigeration frequency and the second refrigeration rotation speed is consistent.
[0159] The application does not specially limit the determination method of the second refrigeration rotation speed and the second refrigeration frequency.
[0160] For example, if the current refrigeration rotation speed is 50 revolutions / second, the current refrigeration frequency is 50 Hz, and the first preset rotation speed is 5 revolutions / second and the first preset frequency is 5 Hz, the corresponding preset value is added to the current obtained refrigeration parameter value to obtain the first refrigeration rotation speed, which can be 45 revolutions / second, and the first refrigeration frequency can be 45 Hz.
[0161] S313: Obtain a target refrigeration mode according to the second refrigeration rotation speed and the second refrigeration frequency.
[0162] After determining the second refrigeration rotation speed and the second refrigeration frequency required by the intelligent household appliance, the current refrigeration rotation speed and the current refrigeration frequency are replaced by the second refrigeration rotation speed and the second refrigeration frequency, so as to update the refrigeration mode of the intelligent household appliance, and the updated refrigeration mode is the target refrigeration mode.
[0163] For example, if the current refrigeration rotation speed is 50 revolutions / second, the current refrigeration frequency is 50 Hz, the second refrigeration rotation speed is 45 revolutions / second, and the second refrigeration frequency is 45 Hz; the two refrigeration parameters of “50 revolutions / second” and “50 Hz” are replaced by “45 revolutions / second” and “45 Hz”, respectively. At this time, the updated refrigeration mode of the intelligent household appliance is “45 revolutions / second, 45 Hz”, and the refrigeration mode is the target refrigeration mode.
[0164] S314: Determine that the user's body feeling state is a third body feeling state.
[0165] S315: Determine the current refrigeration mode as the target refrigeration mode.
[0166] When the user's body feeling state is the third body feeling state, the user is in a relatively comfortable state, and the user's current pore water content will not bring the user an uncomfortable feeling, so it is not necessary to change the current refrigeration mode of the intelligent household appliance, and the current refrigeration mode is determined as the target refrigeration mode.
[0167] For example, if the current refrigeration mode is "50 rpm, 50 Hz" and the user's body feeling state is a comfortable state, it indicates that the current refrigeration mode does not need to be updated, and the "50 rpm, 50 Hz" is still used for refrigeration, at this time, it can be determined that the target refrigeration mode of the smart home appliance is "50 rpm, 50 Hz".
[0168] S316: Determine a preset duration of the target refrigeration mode according to the target refrigeration mode, the pore water content, and the preset water content.
[0169] The preset duration is used to indicate the length of time that the target refrigeration mode runs.
[0170] According to the target refrigeration mode currently determined by the smart home appliance, the current pore water content of the user, and the preset water content, the length of time that the pore water content of the user reaches the preset water content can be determined when the smart home appliance is refrigerated in the target refrigeration mode, so as to determine the preset duration of the target refrigeration mode.
[0171] It can be understood that different pore water contents bring different body feeling states to the user, but there are multiple different pore water contents corresponding to the same body feeling state. For example, the pore water content of 70% and the pore water content of 80% can both determine that the body feeling state of the user is a humid state, but the humidities of the two are different, so the refrigeration speed, the refrigeration frequency, and the preset duration of the refrigeration mode running of the smart home appliance are different when the smart home appliance is refrigerated in different humidities. The determination of the preset duration can be simplified by pre-acquiring the changes of the pore water content of the user in the refrigeration process of different models of smart home appliances, and constructing a database related to the preset duration, so as to simplify the determination process of the preset duration. The specific determination method of the preset duration is not specially limited in the present application.
[0172] For example, if the target refrigeration mode is "45 rpm, 45 Hz", the current pore water content is 40%, and the preset water content is 50%, the smart home appliance is refrigerated at the speed and frequency of "45 rpm, 45 Hz", and the length of time that the pore water content of the user reaches 50% from 40% is 10 minutes, at this time, it can be determined that the preset duration of the target refrigeration mode is 10 minutes.
[0173] S317: Control the smart home appliance to perform refrigeration processing according to the refrigeration speed and the refrigeration frequency corresponding to the target refrigeration mode within the preset duration.
[0174] After determining the preset duration of the smart home appliance, the smart home appliance is controlled to perform refrigeration processing according to the refrigeration speed and the refrigeration frequency corresponding to the target refrigeration mode, and the length of time of the refrigeration processing process is consistent with the preset duration.
[0175] For example, if the target refrigeration mode is "45 rotations per second, 45 Hz" and the preset time length is 10 minutes, the smart home appliance is controlled to perform refrigeration processing at the rotation speed and frequency of "45 rotations per second, 45 Hz" for 10 minutes.
[0176] S318: Reacquire the pore water content of the user.
[0177] After the smart home appliance runs at the currently determined target refrigeration mode for the preset time length, the pore water content of the user is reacquired, thereby obtaining a new pore water content.
[0178] It can be understood that if the currently determined target refrigeration mode is used to reduce the pore water content of the user, the reacquired pore water content is less than the pore water content acquired last time; if the currently determined target refrigeration mode is used to increase the pore water content of the user, the reacquired pore water content is greater than the pore water content acquired last time.
[0179] For example, after the smart home appliance is controlled to perform refrigeration processing at the rotation speed and frequency of "45 rotations per second, 45 Hz" for 10 minutes, the pore water content acquired last time can be 40%, and the reacquired pore water content of the user can be 50%.
[0180] S319: Determine whether the new pore water content is equal to the preset water content; if yes, execute step S320; if no, execute step S321.
[0181] The purpose of this step is to determine whether the user is in a comfortable state after the smart home appliance runs at the target refrigeration mode for the preset time length.
[0182] If the new pore water content is equal to the preset water content, it indicates that the water content of the user's current body surface is moderate, and the user is in a comfortable environment. At this time, the refrigeration mode of the smart home appliance is not changed, and the smart home appliance is controlled to continue refrigeration processing according to the target refrigeration mode, and the time length of the refrigeration processing process is consistent with the preset time length determined last time.
[0183] If the new pore water content is not equal to the preset water content, it indicates that the water content of the user's current body surface is high or low, and the user is not in a comfortable state. At this time, the thermal state of the user is re-determined; according to the re-determined thermal state and the target refrigeration mode currently running by the smart home appliance, a new target refrigeration mode is determined, and the smart home appliance is controlled to perform refrigeration processing according to the new target refrigeration mode.
[0184] Optionally, the new target refrigeration mode is determined according to the thermal state and the target refrigeration mode, comprising:
[0185] If the body feeling state is the first body feeling state, a new first refrigeration rotating speed is re-determined according to the first refrigeration rotating speed and the first preset rotating speed; a new first refrigeration frequency is re-determined according to the first refrigeration frequency and the first preset frequency, and the new first refrigeration frequency is greater than the old first refrigeration frequency; a new target refrigeration mode is obtained according to the new first refrigeration rotating speed and the new first refrigeration frequency; wherein the new first refrigeration rotating speed is greater than the old first refrigeration rotating speed.
[0186] If the body feeling state is the second body feeling state, a new second refrigeration rotating speed is re-determined according to the second refrigeration rotating speed and the second preset rotating speed; a new second refrigeration frequency is re-determined according to the second refrigeration frequency and the second preset frequency, and the new second refrigeration frequency is less than the old second refrigeration frequency; a new target refrigeration mode is obtained according to the new second refrigeration rotating speed and the new second refrigeration frequency; wherein the new second refrigeration rotating speed is less than the old second refrigeration rotating speed.
[0187] It can be understood that when the new pore water content is not equal to the preset water content, there are only two cases of the user's body feeling state at this time, that is, the user's body feeling state at this time is the first body feeling state or the second body feeling state; when the new refrigeration mode is determined according to the re-determined body feeling state, the determination method of the new first refrigeration rotating speed and the new first refrigeration frequency is the same as that of the old first refrigeration rotating speed and the old first refrigeration frequency, and the determination method of the new second refrigeration rotating speed and the new second refrigeration frequency is the same as that of the old second refrigeration rotating speed and the old second refrigeration frequency.
[0188] For example, after controlling the intelligent household appliance to perform refrigeration processing at a rotating speed and frequency of "45 rpm, 45 Hz" for 10 minutes, if the previously obtained pore water content is 40%, and the re-obtained pore water content of the user is 50%, 50% = 50%, it indicates that the current pore water content does not make the user feel uncomfortable, at this time, the refrigeration mode of the intelligent household appliance is not changed, and the intelligent household appliance is controlled to continue to perform refrigeration processing at a rotating speed and frequency of "45 rpm, 45 Hz" for 10 minutes, and the pore water content of the user is re-obtained after 10 minutes; if the previously obtained pore water content is 40%, and the re-obtained pore water content of the user is 60%, 60% > 50%, it indicates that the current pore water content makes the user feel uncomfortable, and the pore water content is high, at this time, the body feeling state of the user is re-determined as the first body feeling state, and a new target refrigeration mode "55 rpm, 55 Hz" and a new preset time length 5 minutes are determined according to the body feeling state and the currently running target refrigeration mode, at this time, the intelligent household appliance is controlled to perform refrigeration processing at a rotating speed and frequency of "55 rpm, 55 Hz" for 5 minutes, and the pore water content of the user is re-obtained after 10 minutes.
[0189] S320: controlling the intelligent household appliance to continue to perform refrigeration processing according to the target refrigeration mode.
[0190] S321: determining a new target refrigeration mode according to the somatic state and the target refrigeration mode, and controlling the smart home appliance to perform refrigeration processing according to the new target refrigeration mode.
[0191] The smart home appliance control method provided in this embodiment, by acquiring the user's pore water content and the current refrigeration mode of the smart home appliance; determining whether the pore water content is greater than the preset water content, when the pore water content is greater than the preset water content, determining that the user's somatic state is a first somatic state, and taking the first refrigeration mode as the target refrigeration mode; when the pore water content is not greater than the preset water content, determining whether the pore water content is less than the preset water content, if the pore water content is less than the preset water content, determining that the user's somatic state is a second somatic state, and taking the second refrigeration mode as the target refrigeration mode; if the pore water content is not less than the preset water content, determining that the user's somatic state is a third somatic state, and taking the current refrigeration mode as the target refrigeration mode; after determining the target refrigeration mode, controlling the smart home appliance to perform refrigeration processing according to the target refrigeration mode. This method realizes intelligent control of the temperature of the space where the user is located, minimizes the negative impact of the long-term operation of the smart air conditioner on human health, reduces the probability of the user suffering from air conditioner disease, improves the functionality and intelligence of the smart air conditioner, and improves the user's experience.
[0192] Figure 4 The structure diagram of the smart home appliance control device provided in this application is shown in Figure 1. As shown in Figure 1, the application provides a smart home appliance control device 300, which comprises: Figure 5
[0193] The acquisition module 301 is configured to acquire the user's pore water content and the current refrigeration mode of the smart home appliance.
[0194] The determination module 302 is configured to determine the user's somatic state according to the pore water content and the preset water content, the somatic state being used to indicate the user's body perception in the current refrigeration mode.
[0195] The determination module 302 is further configured to determine the target refrigeration mode of the smart home appliance according to the somatic state and the current refrigeration mode.
[0196] The control module 303 is configured to control the smart home appliance to perform refrigeration processing according to the target refrigeration mode.
[0197] Optionally, the smart home appliance control device further comprises a judgment module 304.
[0198] The judgment module 304 is configured to determine whether the pore water content is greater than the preset water content.
[0199] If the pore moisture content is greater than the preset moisture content, the determination module 302 is further configured to determine that the body feeling state of the user is a first body feeling state.
[0200] If the pore moisture content is not greater than the preset moisture content, the determination module 302 is further configured to determine whether the pore moisture content is less than the preset moisture content.
[0201] The determination module 302 is further configured to determine that the body feeling state of the user is a second body feeling state when the pore moisture content is less than the preset moisture content.
[0202] The determination module 302 is further configured to determine that the body feeling state of the user is a third body feeling state when the pore moisture content is not less than the preset moisture content.
[0203] Optionally, the determination module 302 is further configured to determine a current refrigeration rotating speed and a current refrigeration frequency corresponding to the current refrigeration mode according to the current refrigeration mode.
[0204] The determination module 302 is further configured to determine a first refrigeration rotating speed according to the current refrigeration rotating speed and a first preset rotating speed.
[0205] The determination module 302 is further configured to determine a first refrigeration frequency according to the current refrigeration frequency and a first preset frequency, wherein the first refrigeration rotating speed is greater than the current refrigeration rotating speed, and the first refrigeration frequency is greater than the current refrigeration frequency.
[0206] The acquisition module 301 is further configured to obtain a target refrigeration mode according to the first refrigeration rotating speed and the first refrigeration frequency.
[0207] Optionally, the determination module 302 is further configured to determine a second refrigeration rotating speed according to the current refrigeration rotating speed and a second preset rotating speed.
[0208] The determination module 302 is further configured to determine a second refrigeration frequency according to the current refrigeration frequency and a second preset frequency, wherein the second refrigeration rotating speed is less than the current refrigeration rotating speed, and the second refrigeration frequency is less than the current refrigeration frequency.
[0209] The acquisition module 301 is further configured to obtain a target refrigeration mode according to the second refrigeration rotating speed and the second refrigeration frequency.
[0210] Optionally, the determination module 302 is further configured to determine a preset time length for which the target refrigeration mode runs according to the target refrigeration mode, the pore moisture content, and the preset moisture content.
[0211] The control module 303 is specifically configured to control the smart home appliance to perform the refrigeration processing according to the refrigeration rotating speed and the refrigeration frequency corresponding to the target refrigeration mode within the preset time length.
[0212] Optionally, the acquisition module 301 is further configured to reacquire the pore moisture content of the user.
[0213] The judgment module 304 is further configured to judge whether the new pore moisture content is equal to the preset moisture content.
[0214] If the new pore moisture content is equal to the preset moisture content, the control module 303 is specifically configured to control the smart home appliance to continue the refrigeration processing according to the target refrigeration mode.
[0215] If the new pore moisture content is not equal to the preset moisture content, the determination module 302 is further configured to determine a new target refrigeration mode according to the body feeling state and the target refrigeration mode.
[0216] The control module 303 is specifically configured to control the smart home appliance to perform the refrigeration processing according to the new target refrigeration mode.
[0217] Optionally, if the body feeling state is a first body feeling state, the determination module 302 is further configured to re-determine a new first refrigeration rotating speed according to the first refrigeration rotating speed and a first preset rotating speed.
[0218] The determination module 302 is further configured to re-determine a new first refrigeration frequency according to the first refrigeration frequency and a first preset frequency, wherein the new first refrigeration rotating speed is greater than an old first refrigeration rotating speed, and the new first refrigeration frequency is greater than an old first refrigeration frequency.
[0219] The acquisition module 301 is further configured to obtain the new target refrigeration mode according to the new first refrigeration rotating speed and the new first refrigeration frequency.
[0220] If the body feeling state is a second body feeling state, the determination module 302 is further configured to re-determine a new second refrigeration rotating speed according to the second refrigeration rotating speed and a second preset rotating speed.
[0221] The determination module 302 is further configured to re-determine a new second refrigeration frequency according to the second refrigeration frequency and a second preset frequency, wherein the new second refrigeration rotating speed is less than an old second refrigeration rotating speed, and the new second refrigeration frequency is less than an old second refrigeration frequency.
[0222] The acquisition module 301 is further configured to obtain the new target refrigeration mode according to the new second refrigeration rotating speed and the new second refrigeration frequency.
[0223] Figure 5The structural schematic diagram of the intelligent household appliance control device provided in the present application is shown in FIG. 1. As shown in FIG. 1, the present application provides an intelligent household appliance control device 400, which comprises a receiver 401, a transmitter 402, a processor 403 and a memory 404.
[0224] The receiver 401 is configured to receive instructions and data.
[0225] The transmitter 402 is configured to transmit instructions and data.
[0226] The memory 404 is configured to store computer-executed instructions.
[0227] The processor 403 is configured to execute the computer-executed instructions stored in the memory 404 to realize each step of the intelligent household appliance control method performed in the above-mentioned embodiments. For details, please refer to the related description in the foregoing embodiments of the intelligent household appliance control method.
[0228] Optionally, the memory 404 can be independent or integrated with the processor 403.
[0229] When the memory 404 is independently arranged, the electronic device further comprises a bus configured to connect the memory 404 and the processor 403.
[0230] The present application further provides a computer-readable storage medium, which stores computer-executed instructions. When the processor executes the computer-executed instructions, the intelligent household appliance control method performed by the intelligent household appliance control device is realized.
[0231] Those skilled in the art can understand that all or some of the steps in the method disclosed above, the functional modules / units in the system and the device can be implemented as software, firmware, hardware and appropriate combinations thereof. In the hardware implementation, the division between the functional modules / units mentioned in the above description does not necessarily correspond to the division of physical components; for example, one physical component can have multiple functions, or one function or step can be performed by several physical components in cooperation. Some or all of the physical components can be implemented as software executed by a processor, such as a central processing unit, a digital signal processor or a microprocessor, or as hardware, or as an integrated circuit, such as an application-specific integrated circuit. Such software can be distributed on a computer readable medium, which can include computer storage media (or non-transitory media) and communication media (or transitory media). As known to those skilled in the art, the term computer storage media includes volatile and non-volatile, removable and non-removable media implemented in any method or technology for storage of information such as computer readable instructions, data structures, program modules or other data. Computer storage media includes, but is not limited to, RAM, ROM, EEPROM, flash memory or other memory technology, CD-ROM, digital versatile disks (DVD) or other optical disk storage, magnetic cassettes, magnetic tapes, magnetic disk storage or other magnetic storage devices, or any other medium that can be used to store the desired information and can be accessed by a computer. In addition, as known to those skilled in the art, communication media typically includes computer readable instructions, data structures, program modules or other data in modulated data signals such as carrier waves or other transport mechanisms, and can include any information delivery medium.
[0232] So far, the technical solutions of the present application have been described in combination with the preferred embodiments shown in the drawings, but those skilled in the art can easily understand that the protection scope of the present application is obviously not limited to these specific embodiments, and the above embodiments are only used to illustrate the technical solutions of the present application, but not to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that they can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement for some or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present application.
Claims
1. A smart home appliance control method, characterized by, The method comprises: obtaining the pore moisture content of the user and the current refrigeration mode of the smart home appliance; determining the thermal state of the user according to the pore moisture content and the preset moisture content, the thermal state being used to indicate the body perception of the user in the current refrigeration mode; determining the target refrigeration mode of the smart home appliance according to the thermal state and the current refrigeration mode; controlling the smart home appliance to perform refrigeration processing according to the target refrigeration mode; the thermal state comprises a first thermal state, a second thermal state and a third thermal state, and the determination of the thermal state of the user according to the pore moisture content and the preset moisture content comprises: determining whether the pore moisture content is greater than the preset moisture content; if yes, determining that the thermal state of the user is the first thermal state; if no, determining whether the pore moisture content is less than the preset moisture content; if the pore moisture content is less than the preset moisture content, determining that the thermal state of the user is the second thermal state; if the pore moisture content is not less than the preset moisture content, determining that the thermal state of the user is the third thermal state; if the thermal state is the first thermal state, the determination of the target refrigeration mode of the smart home appliance according to the thermal state and the current refrigeration mode comprises: determining the current refrigeration speed and the current refrigeration frequency corresponding to the current refrigeration mode according to the current refrigeration mode; determining a first refrigeration speed according to the current refrigeration speed and a first preset speed, the first refrigeration speed being greater than the current refrigeration speed; determining a first refrigeration frequency according to the current refrigeration frequency and a first preset frequency, the first refrigeration frequency being greater than the current refrigeration frequency; obtaining the target refrigeration mode according to the first refrigeration speed and the first refrigeration frequency. The control of the smart home appliance to perform refrigeration processing according to the target refrigeration mode comprises: determining a preset time length for the operation of the target refrigeration mode according to the target refrigeration mode, the pore moisture content and the preset moisture content; controlling the smart home appliance to perform refrigeration processing according to the refrigeration speed and the refrigeration frequency corresponding to the target refrigeration mode within the preset time length.
2. The method of claim 1, wherein, if the thermal state is the second thermal state, the determination of the target refrigeration mode of the smart home appliance according to the thermal state and the current refrigeration mode comprises: determining the current refrigeration speed and the current refrigeration frequency corresponding to the current refrigeration mode according to the current refrigeration mode; determining a second refrigeration speed according to the current refrigeration speed and a second preset speed, the second refrigeration speed being less than the current refrigeration speed; determining a second refrigeration frequency according to the current refrigeration frequency and a second preset frequency, the second refrigeration frequency being less than the current refrigeration frequency; obtaining the target refrigeration mode according to the second refrigeration speed and the second refrigeration frequency.
3. The method of claim 2, wherein, After the control of the smart home appliance to perform refrigeration processing according to the target refrigeration mode corresponding to the refrigeration speed and the refrigeration frequency within the preset time length, the method further comprises: reacquire the user's pore water content, and determine whether the new pore water content is equal to the preset water content; if yes, control the smart home appliance to continue the refrigeration process according to the target refrigeration mode; if no, determine a new target refrigeration mode according to the body feeling state and the target refrigeration mode, and control the smart home appliance to perform the refrigeration process according to the new target refrigeration mode.
4. The method of claim 3, wherein, The determination of the new target refrigeration mode according to the body feeling state and the target refrigeration mode comprises: if the body feeling state is a first body feeling state, re-determine a new first refrigeration rotating speed according to the first refrigeration rotating speed and a first preset rotating speed; re-determine a new first refrigeration frequency according to the first refrigeration frequency and a first preset frequency, wherein the new first refrigeration rotating speed is greater than the old first refrigeration rotating speed, and the new first refrigeration frequency is greater than the old first refrigeration frequency; obtain the new target refrigeration mode according to the new first refrigeration rotating speed and the new first refrigeration frequency; if the body feeling state is a second body feeling state, re-determine a new second refrigeration rotating speed according to the second refrigeration rotating speed and a second preset rotating speed; re-determine a new second refrigeration frequency according to the second refrigeration frequency and a second preset frequency, wherein the new second refrigeration rotating speed is less than the old second refrigeration rotating speed, and the new second refrigeration frequency is less than the old second refrigeration frequency; obtain the new target refrigeration mode according to the new second refrigeration rotating speed and the new second refrigeration frequency.
5. A smart home control device, characterized by, comprise: an acquisition module configured to acquire a user's pore water content and a current refrigeration mode of a smart home appliance; a determination module configured to determine a body feeling state of the user according to the pore water content and a preset water content, the body feeling state being used to indicate a body perception of the user under the current refrigeration mode; the determination module is further configured to determine a target refrigeration mode of the smart home appliance according to the body feeling state and the current refrigeration mode; a control module configured to control the smart home appliance to perform a refrigeration process according to the target refrigeration mode; the body feeling state comprises a first body feeling state, a second body feeling state, and a third body feeling state, and the determination of the body feeling state of the user according to the pore water content and the preset water content comprises: a judgment module configured to determine whether the pore water content is greater than the preset water content; if yes, the determination module is further configured to determine that the body feeling state of the user is the first body feeling state; if no, the judgment module is further configured to determine whether the pore water content is less than the preset water content; the determination module is further configured to determine that the body feeling state of the user is the second body feeling state when the pore water content is less than the preset water content; the determination module is further configured to determine that the body feeling state of the user is the third body feeling state when the pore water content is not less than the preset water content; if the body feeling state is the first body feeling state, the determination of the target refrigeration mode of the smart home appliance according to the body feeling state and the current refrigeration mode comprises: the determination module is further configured to determine a current refrigeration rotating speed and a current refrigeration frequency corresponding to the current refrigeration mode according to the current refrigeration mode; The determination module is further configured to determine a first refrigeration rotating speed according to the current refrigeration rotating speed and a first preset rotating speed; The determination module is further configured to determine a first refrigeration frequency according to the current refrigeration frequency and a first preset frequency, wherein the first refrigeration rotating speed is greater than the current refrigeration rotating speed, and the first refrigeration frequency is greater than the current refrigeration frequency; The determination module is further configured to obtain a target refrigeration mode according to the first refrigeration rotating speed and the first refrigeration frequency; The control of the intelligent household appliance to perform refrigeration processing in the target refrigeration mode comprises: The determination module is further configured to determine a preset time length for the operation of the target refrigeration mode according to the target refrigeration mode, the pore water content and the preset water content; The control module is further configured to control the intelligent household appliance to perform refrigeration processing in a refrigeration rotating speed and a refrigeration frequency corresponding to the target refrigeration mode within the preset time length.
6. A smart home control device, characterized by, Comprise: a memory; a processor; wherein the memory stores computer-executable instructions; The processor executes the computer-executable instructions stored in the memory to implement the intelligent household appliance control method according to any one of claims 1-4.
7. A computer storage medium, characterized in that The computer storage medium stores computer-executable instructions, and the computer-executable instructions are executed by the processor to implement the intelligent household appliance control method according to any one of claims 1-4.
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