Adaptive control method, device, cup and medium for interactive hydrogen-rich water cup
The interactive module obtains water treatment instructions and time periods, generates a target water treatment plan, and combines ambient temperature and water volume adjustments to solve the problem of insufficient adaptability of hydrogen-rich water cups in different scenarios, achieving flexible and accurate water treatment control.
Patent Information
- Application Number
- CN202510284808.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-11
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2045-03-11
AI Technical Summary
The existing hydrogen-rich water cup adopts a fixed control scheme, resulting in insufficient adaptability in different scenarios.
The interactive module obtains water treatment instructions, and generates a target water treatment control plan based on the current time period and the solution library identified by the target user, controls the hydrogen-rich water cup for water treatment, and makes real-time adjustments based on the ambient temperature and water volume.
It realizes flexible and precise control of hydrogen-rich water cups in different scenarios, meets personalized and precise drinking water needs, and improves the quality and effect of water treatment.
Smart Images

Figure CN119797558B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of hydrogen-rich water cup control, and in particular to a method, device, water cup and medium for adaptively controlling an interactive hydrogen-rich water cup. Background Art
[0002] In modern society, people are increasingly concerned about health and wellness. As the source of life, water's quality and functionality are receiving increasing attention. Hydrogen-rich water cups have emerged to provide people with drinking water with special features. While traditional water cups are merely used to hold ordinary drinking water, hydrogen-rich water cups utilize specialized technologies to produce hydrogen-rich water. However, existing hydrogen-rich water cups often utilize fixed control schemes, making them inflexible in diverse scenarios. Summary of the Invention
[0003] Based on this, it is necessary to propose an adaptive control method for interactive hydrogen-rich water cups to address the technical problem that hydrogen-rich water cups in the existing technology often adopt a fixed control scheme, which makes the hydrogen-rich water cups insufficiently adaptable when facing different scenarios.
[0004] In a first aspect, a method for adaptively controlling an interactive hydrogen-rich water cup is provided. The method is used to control a hydrogen-rich water cup, wherein the hydrogen-rich water cup is provided with an interactive module. The method comprises:
[0005] Based on the interactive module, obtaining water treatment instructions;
[0006] According to the water treatment instruction, obtaining the current time period;
[0007] acquiring a target water treatment control scheme according to the current time period and a scheme library corresponding to the target user identifier in the water treatment instruction, wherein the scheme library corresponding to the target user identifier is determined based on the interaction module;
[0008] According to the target water treatment control scheme, the hydrogen-rich water cup is controlled to perform water treatment and a water treatment end signal is obtained.
[0009] Furthermore, after the step of controlling the hydrogen-rich water cup to perform water treatment according to the target water treatment control scheme and obtaining a water treatment end signal, the method further includes:
[0010] In response to the water treatment end signal, obtaining the current actual ambient temperature and using it as the first temperature;
[0011] determining target interval data based on the first temperature;
[0012] According to the target interval data, the current water volume in the hydrogen-rich water cup is obtained;
[0013] If the current water volume in the hydrogen-rich water cup is greater than the water volume threshold, the current actual ambient temperature is obtained and used as the second temperature. According to the second temperature, the supplementary water treatment plan corresponding to the target water treatment control plan is updated to obtain a water treatment plan to be treated. According to the water treatment plan to be treated, the hydrogen-rich water cup is controlled to perform water treatment, a supplementary treatment end signal is obtained, and in response to the supplementary treatment end signal, the target interval data is initialized to a null value.
[0014] If the current water volume in the hydrogen-rich water cup is less than or equal to the water volume threshold, the target interval data is initialized to a null value.
[0015] Furthermore, the step of acquiring a target water treatment control solution according to the current time period and a solution library corresponding to the target user identifier in the water treatment instruction includes:
[0016] determining an initial water treatment control plan according to the current time period and a plan library corresponding to the target user identifier in the water treatment instruction;
[0017] Obtain the current actual ambient temperature, current water quality data and historical drinking water data;
[0018] generating first adjustment data according to the initial water treatment control scheme, the current actual ambient temperature, the current water quality data, and the historical drinking water data;
[0019] The initial water treatment control scheme is updated according to the first adjustment data to obtain the target water treatment control scheme.
[0020] Furthermore, before the step of determining an initial water treatment control solution based on the current time period and a solution library corresponding to the target user identifier in the water treatment instruction, the method further includes:
[0021] Based on the interaction module, obtaining a solution generation instruction;
[0022] Based on the interaction module, the solution library corresponding to the target user identifier is acquired and stored, wherein the solution library corresponding to the target user identifier is generated according to user basic information, physical data and disease data.
[0023] Furthermore, before the step of determining an initial water treatment control solution based on the current time period and a solution library corresponding to the target user identifier in the water treatment instruction, the method further includes:
[0024] Based on the interaction module, obtaining a solution sharing instruction;
[0025] Based on the interactive module, a water treatment control solution is obtained according to the target solution group identifier in the solution sharing instruction, and a solution library corresponding to the target user identifier in the water treatment instruction is updated.
[0026] Furthermore, after the step of controlling the hydrogen-rich water cup to perform water treatment according to the target water treatment control scheme and obtaining a water treatment end signal, the method further includes:
[0027] Based on the interactive module, obtaining drinking water evaluation data corresponding to the water treatment instruction;
[0028] generating second adjustment data according to the drinking water evaluation data corresponding to the water treatment instruction and the target water treatment control scheme;
[0029] The solution library corresponding to the target user identifier is updated according to the second adjustment data.
[0030] In a second aspect, a device for adaptively controlling an interactive hydrogen-rich water cup is provided. The device is used to control a hydrogen-rich water cup, wherein the hydrogen-rich water cup is provided with an interactive module. The device comprises:
[0031] An instruction acquisition module, configured to acquire water treatment instructions based on the interaction module;
[0032] A time period determination module, configured to obtain a current time period according to the water treatment instruction;
[0033] a solution acquisition module, configured to acquire a target water treatment control solution according to the current time period and a solution library corresponding to the target user identifier in the water treatment instruction, wherein the solution library corresponding to the target user identifier is determined based on the interaction module;
[0034] The water treatment control module is used to control the hydrogen-rich water cup to perform water treatment according to the target water treatment control scheme and obtain a water treatment end signal.
[0035] In a third aspect, a hydrogen-rich water cup is provided, which includes an interactive module, a memory, a processor, and a computer program stored in the memory and runnable on the processor. The processor is communicatively connected to the interactive module, and when the processor executes the computer program, the steps of the above-mentioned method for adaptive control of an interactive hydrogen-rich water cup are implemented.
[0036] In a fourth aspect, a computer-readable storage medium is provided, wherein the computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the steps of the above-mentioned method for adaptive control of an interactive hydrogen-rich water cup are implemented.
[0037] The present invention discloses an interactive hydrogen-rich water cup adaptive control method, device, water cup, and medium. The method, device, and medium utilize an interactive module to obtain a water treatment instruction, obtain a current time period based on the water treatment instruction, obtain a target water treatment control solution based on the current time period and a solution library corresponding to a target user identifier in the water treatment instruction, and control the hydrogen-rich water cup to perform water treatment according to the target water treatment control solution, thereby obtaining a water treatment end signal. The method, device, and medium for interactive hydrogen-rich water cup adaptive control of the water treatment process in the hydrogen-rich water cup are implemented by obtaining a water treatment instruction and determining the current time period based on the interactive module, and then obtaining a target water treatment control solution corresponding to the current time period and the target user identifier. The target water treatment control solution enables flexible and precise control of the water treatment process in the hydrogen-rich water cup, realizing interactive adaptive control of the hydrogen-rich water cup, thereby enabling the hydrogen-rich water cup to better adapt to drinking water needs in different scenarios. BRIEF DESCRIPTION OF THE DRAWINGS
[0038] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0039] in:
[0040] Figure 1 This is a diagram of an application environment for an adaptive control method for an interactive hydrogen-rich water cup in one embodiment;
[0041] Figure 2 is a flow chart of a method for adaptively controlling an interactive hydrogen-rich water cup in one embodiment;
[0042] Figure 3 is a flow chart of a method for adaptively controlling an interactive hydrogen-rich water cup in one embodiment;
[0043] Figure 4 is a structural block diagram of an adaptive control device for an interactive hydrogen-rich water cup in one embodiment;
[0044] Figure 5 Schematic diagram of the structure of a hydrogen-rich water cup in one embodiment. DETAILED DESCRIPTION
[0045] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of them. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.
[0046] The adaptive control method for an interactive hydrogen-rich water cup provided by the embodiment of the present invention can be applied in the following situations: Figure 1 In the application environment, the application environment includes a client 1, a server 3 and a hydrogen-rich water cup 2, the client 1 communicates with the server 3 through the network, and the client 1 communicates with the hydrogen-rich water cup 2.
[0047] Optionally, the client 1 is used to obtain a water treatment instruction based on the interactive module; obtain a current time period according to the water treatment instruction; obtain a target water treatment control scheme according to the current time period and a scheme library corresponding to the target user identifier in the water treatment instruction; send a control instruction to the hydrogen-rich water cup 2 according to the target water treatment control scheme, thereby controlling the hydrogen-rich water cup 2 to perform water treatment through the control instruction and obtaining a water treatment end signal.
[0048] Optionally, the hydrogen-rich water cup 2 is used to: obtain a water treatment instruction based on the interactive module; obtain a current time period according to the water treatment instruction; obtain a target water treatment control scheme according to the current time period and a scheme library corresponding to the target user identifier in the water treatment instruction, wherein the scheme library corresponding to the target user identifier is determined based on the interactive module; according to the target water treatment control scheme, control the hydrogen-rich water cup to perform water treatment and obtain a water treatment end signal.
[0049] Optionally, the client 1 is configured to obtain a water treatment instruction based on the interaction module, and send the water treatment instruction to the server 3 .
[0050] Based on the interactive module, water treatment instructions are obtained and the current time period is determined, and then a target water treatment control scheme corresponding to the current time period and the target user identifier is obtained. Through the target water treatment control scheme, flexible and precise control of the water treatment process of the hydrogen-rich water cup is achieved, and interactive-based adaptive control of the hydrogen-rich water cup is achieved, so that the hydrogen-rich water cup can better adapt to the drinking water needs in different scenarios.
[0051] The hydrogen-rich water cup 2 is a cup that can produce hydrogen-rich water. Hydrogen-rich water refers to water containing a certain concentration of hydrogen.
[0052] See also Figure 5Optionally, the hydrogen-rich water cup 2 includes a cup cover 21, a cup body 22, a cup base 23, a control unit, a hydrogen preparation component, a music playing component, a vibration component, a heating component, and a lighting component. The control unit is used to control the hydrogen preparation component, the music playing component, the vibration component, the heating component, and the lighting component. The control unit includes a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the steps of the adaptive control method for an interactive hydrogen-rich water cup of the present application are implemented. The hydrogen preparation component is a component for preparing hydrogen. The music playing component uses a speaker. The vibration component is a component that generates vibration. The heating component is a component for heating. The lighting component is a component for emitting light.
[0053] The cup lid 21 is movably connected to the cup body 22, and a water chamber is defined within the lid 21 and the cup body 22. The cup body 22 is mounted above the cup holder 23. The control unit, hydrogen production component, music player, vibration component, and heating component are mounted within the mounting chamber within the cup holder. The lighting component is mounted on the cup lid 21 and / or the cup body 22. The vibration component is used to vibrate the water in the water chamber, and the heating component is used to heat the water in the water chamber.
[0054] The hydrogen-rich water cup 2 also includes operating buttons 232 and a display screen 231, both mounted on the outer surface of the cup holder 23. A control unit controls these buttons 232 and display screen 231. Display screen 231 utilizes a touch-sensitive liquid crystal display. The operating buttons 232, display screen 231, hydrogen production components, music playback components, vibration components, heating components, and lighting components all communicate with the control unit.
[0055] The hydrogen-rich water cup is provided with an interactive module. The interactive module includes one or more of an operation button 232, a display screen 231, and a communication component. The communication component includes a module utilizing wired communication technology and / or a module utilizing wireless communication technology. The module utilizing wireless communication technology may be a module utilizing Bluetooth communication technology.
[0056] The vibration component generates mechanical vibrations driven by a motor. These vibrations are directly transmitted to the water in the hydrogen-rich water bottle, causing it to vibrate. When water is vibrated, the distances and interactions between water molecules change. Vibration intensifies the movement of water molecules, reducing the size of water clusters. Under normal circumstances, water molecules form larger clusters, but vibration breaks these clusters up, forming smaller ones. Smaller clusters of water have higher activity and are more easily able to penetrate cell membranes and enter cells, thereby improving water utilization efficiency in the human body. Physical property measurements show that the surface tension of small-cluster water is reduced. Experimental measurements have shown that the surface tension of water treated with vibration is lower than that of untreated water. This reduction in surface tension indicates a change in the interactions between water molecules, indirectly proving that vibration reduces the size of water clusters. Furthermore, the conductivity of small-cluster water increases because it is more easily ionized, further evidence of the increased activity of water treated with the vibration component. In actual applications, some users have reported that after drinking vibration-treated water, they feel that their body metabolism has improved, for example, their digestive function has improved. This may be because small molecular clusters of water are more easily absorbed by cells, thereby promoting the body's metabolic process.
[0057] The client 1 may be, but is not limited to, various personal computers, laptops, smart phones, tablet computers, and portable wearable devices. Application software is installed in the client 1.
[0058] The server 3 can be implemented by an independent server or a server cluster consisting of multiple servers.
[0059] The present invention is described in detail below through specific examples.
[0060] See also Figure 2 As shown, Figure 2 A flow chart of a method for adaptively controlling an interactive hydrogen-rich water cup provided in an embodiment of the present invention is provided. The method is used to control a hydrogen-rich water cup provided with an interactive module. The method includes:
[0061] S1: Obtaining water treatment instructions based on the interaction module;
[0062] The water treatment instruction is a notification instruction to control the hydrogen-rich water cup to perform water treatment.
[0063] Specifically, the water treatment instruction input by the user through the interactive module may be obtained, or the water treatment instruction sent by a third-party application through the interactive module may be obtained.
[0064] Among them, the water treatment instruction sent by the user through the client can be obtained, or the water treatment instruction triggered by the user by pressing the operation button 232 (that is, the interactive module) or the water treatment instruction triggered by the user by touching the display screen 231 (that is, the interactive module).
[0065] Optionally, the hydrogen-rich water cup can be set with a unique identification (hereinafter referred to as the factory identification) when it leaves the factory. During the interaction process of the hydrogen-rich water cup, when the user triggers the water treatment instruction by pressing the operation button 232 or touching the display screen 231, the controller of the hydrogen-rich water cup uses the factory identification as the target user identification in the water treatment instruction.
[0066] Optionally, the user can register an account on client 1 and use the account ID as the user identifier; when the user sends a water treatment instruction through the client, the client uses the account ID of the user's login account as the target user identifier in the water treatment instruction. It can be understood that in this case, each client corresponds to a hydrogen-rich water cup.
[0067] Optionally, a user can register an account on client 1, bind a hydrogen-rich water cup on client 1, and set a water cup identifier for each bound hydrogen-rich water cup on client 1. This water cup identifier is stored in the hydrogen-rich water cup's storage space, and the correspondence between the water cup identifier and the account number is stored on client 1 and server 3. When the user sends a water treatment instruction to the hydrogen-rich water cup via the client, the client uses the water cup identifier corresponding to the hydrogen-rich water cup as the target user identifier in the water treatment instruction. It is understandable that in this case, each client corresponds to one or more hydrogen-rich water cups.
[0068] S2: Obtain the current time period according to the water treatment instruction;
[0069] Specifically, according to the generation time of the water treatment instruction, a query is performed from a preset time period table to find out the time period corresponding to the generation time, and the found time period is used as the current time period.
[0070] Optionally, the current time period is one of a morning time period, an afternoon time period, and an evening time period.
[0071] Optionally, the current time period is one of: a morning wake-up time period, a breakfast time period, a morning activity time period, a lunch time period, an afternoon activity time period, a dinner time period, and an evening activity time period.
[0072] S3: acquiring a target water treatment control scheme according to the current time period and a scheme library corresponding to the target user identifier in the water treatment instruction, wherein the scheme library corresponding to the target user identifier is determined based on the interaction module;
[0073] Specifically, according to the current time period, a water treatment control scheme is screened from a scheme library corresponding to the target user identifier in the water treatment instruction, and the screened water treatment control scheme is used as the target water treatment control scheme.
[0074] By setting up independent solution libraries for target user IDs, highly personalized and precise water treatment control can be achieved. Each water treatment control solution in the solution library corresponds to an independent time period, allowing the water treatment process to be flexibly adjusted according to the specific needs and actual conditions of different users. This can better meet the different water treatment requirements of users at different time stages and improve the quality and effectiveness of water treatment.
[0075] The solution library stores the associated data of time periods and water treatment control solutions.
[0076] The water treatment control scheme describes the control data of each component of the hydrogen-rich water cup.
[0077] The target user identifier is the user identifier of the user who triggered the water treatment instruction. The user identifier can be data that uniquely identifies a user, such as a user name or user ID.
[0078] The solution library corresponding to the target user identifier is determined based on the interaction module, that is, the solution library corresponding to the target user identifier is determined in advance by the interaction module and stored in the storage space (ie, memory) of the hydrogen-rich water cup.
[0079] The solution library corresponding to the target user identifier can be obtained from the client through the interactive module. Alternatively, multiple water treatment control solutions can be pre-stored in the storage space of the hydrogen-rich water cup, and the user can select a water treatment control solution from the pre-stored multiple water treatment control solutions through the interactive module, and each selected water treatment control solution can be used as the solution library corresponding to the target user identifier.
[0080] S4: According to the target water treatment control scheme, the hydrogen-rich water cup is controlled to perform water treatment and a water treatment end signal is obtained.
[0081] The water treatment end signal is a signal that the water treatment is completed.
[0082] Specifically, the various components of the hydrogen-rich water cup (e.g., the hydrogen production component, the vibration component, and the heating component) are controlled according to the control data in the target water treatment control scheme to perform water treatment. Upon completion of the water treatment, a water treatment end signal is generated. The treated water is more suitable for the drinking needs of the user identified by the target user ID.
[0083] The hydrogen generation component adds hydrogen to the water in the hydrogen-rich water cup. The music played by the music player can adjust the user's mood. The vibration component vibrates the water in the hydrogen-rich water cup, causing the water molecules to move more rapidly, affecting the water's physical properties to a certain extent. The heating component heats the water in the hydrogen-rich water cup.
[0084] This embodiment obtains water treatment instructions and determines the current time period based on the interactive module, and then obtains a target water treatment control scheme corresponding to the current time period and the target user identifier. Through the target water treatment control scheme, flexible and precise control of the water treatment process of the hydrogen-rich water cup is achieved, and interactive-based adaptive control of the hydrogen-rich water cup is achieved, so that the hydrogen-rich water cup can better adapt to drinking water needs in different scenarios.
[0085] See also Figure 3 In one embodiment, after the step of controlling the hydrogen-rich water cup to perform water treatment according to the target water treatment control scheme and obtaining a water treatment end signal, the method further includes:
[0086] S51: In response to the water treatment end signal, obtaining the current actual ambient temperature and using it as the first temperature;
[0087] Specifically, when the water treatment end signal is obtained, the temperature of the environment where the hydrogen-rich water cup is located (that is, the current actual ambient temperature) is obtained in real time in response to the water treatment end signal, and the obtained actual ambient temperature is used as the first temperature.
[0088] Optionally, a temperature sensor may be installed in the hydrogen-rich water cup to detect the temperature of the environment in which the hydrogen-rich water cup is located. When the water treatment end signal is obtained, the temperature detected in real time by the temperature sensor is obtained as the first temperature.
[0089] Optionally, the current actual ambient temperature may be obtained from a third-party application (such as an Internet of Things system) and used as the first temperature.
[0090] S52: Determine target interval data according to the first temperature;
[0091] Optionally, the target interval data is determined based on the first temperature using a table lookup method.
[0092] The target interval data includes at least one time interval.
[0093] S53: Obtaining the current water volume in the hydrogen-rich water cup according to the target interval data;
[0094] Specifically, when the interval between the current time and the generation time of the water treatment end signal is greater than or equal to the target interval data, the amount of water (that is, the volume) in the water holding chamber is obtained, and the amount of water is used as the current water amount in the hydrogen-rich water cup.
[0095] Optionally, a water level sensor can be installed in the water chamber to calculate the amount of water in the water chamber based on the water level data detected by the water level sensor and the dimensions of the water chamber, and this amount of water is used as the current amount of water in the hydrogen-rich water cup. It is understood that the method for calculating the amount of water in the water chamber based on the water level data detected by the water level sensor and the dimensions of the water chamber can be selected from existing technologies and will not be elaborated on here.
[0096] Optionally, a pressure sensor can be installed on the bottom wall of the water holding chamber (referring to the bottom of the water holding chamber when the hydrogen-rich water cup is placed on the platform). The amount of water in the water holding chamber can be calculated by the difference between the data detected by the pressure sensor when the water holding chamber is filled with water and the data detected by the pressure sensor when there is no water in the water holding chamber.
[0097] S54: If the current water volume in the hydrogen-rich water cup is greater than the water volume threshold, the current actual ambient temperature is obtained and used as the second temperature. According to the second temperature, the supplementary water treatment plan corresponding to the target water treatment control plan is updated to obtain a water treatment plan to be treated. According to the water treatment plan to be treated, the hydrogen-rich water cup is controlled to perform water treatment, a supplementary treatment end signal is obtained, and in response to the supplementary treatment end signal, the target interval data is initialized to a null value.
[0098] Specifically, if the current water volume in the hydrogen-rich water cup is greater than the water volume threshold, it means that water treatment is required, and the current actual ambient temperature of the hydrogen-rich water cup is obtained as the second temperature; the supplementary data is determined by a table lookup method based on the second temperature, and the supplementary water treatment scheme corresponding to the target water treatment control scheme is replaced and updated according to the supplementary data, and the supplementary water treatment scheme that has completed the replacement and update is used as the water treatment scheme to be processed; according to the various control data in the water treatment scheme to be processed, the various components of the hydrogen-rich water cup (such as the hydrogen preparation component, the vibration component and the heating component) are controlled to re-treat the water, and the water treatment is completed to generate the supplementary treatment end signal; when the supplementary treatment end signal is obtained, the target interval data is initialized to a null value to complete the re-water treatment, and stop monitoring whether the water treatment is needed to be re-treated.
[0099] The supplementary water treatment plan describes the control data of each component of the hydrogen-rich water cup.
[0100] S55: If the current water volume in the hydrogen-rich water cup is less than or equal to the water volume threshold, the target interval data is initialized to a null value.
[0101] Specifically, if the current water volume in the hydrogen-rich water cup is less than or equal to the water volume threshold, it means that re-water treatment is not required. Therefore, the target interval data is initialized to a null value, and monitoring is stopped to determine whether re-water treatment is required.
[0102] After water has been left for a period of time, the water will change in temperature, hydrogen will be lost, and the hydrogen concentration will become lower, so that the water in the hydrogen-rich water cup will not meet the user's original expected drinking needs. In order to solve this problem, this embodiment determines the target interval data based on the first temperature, thereby achieving different target interval data for different ambient temperatures, so that the monitoring of re-water treatment can meet the requirements of the ambient temperature; when the current water volume in the hydrogen-rich water cup is greater than the water volume threshold, the water is re-treated to ensure that the water in the hydrogen-rich water cup meets the user's needs; and when the current water volume in the hydrogen-rich water cup is less than or equal to the water volume threshold, the water is not re-treated, thereby effectively avoiding unnecessary waste of resources; if the current water volume in the hydrogen-rich water cup is less than or equal to the water volume threshold, the target interval data is initialized to a null value, achieving active stop. Monitor whether water re-treatment is needed; if the current water volume in the hydrogen-rich water cup is greater than the water volume threshold, respond to the supplementary processing end signal and initialize the target interval data to a null value, so that monitoring whether water re-treatment is needed is stopped only when the water re-treatment is completely completed. After the water re-treatment is interrupted and step S53 is re-executed when the hydrogen-rich water cup is ready, the continuity and stability of the water treatment process are ensured, and monitoring and processing anomalies caused by interruptions are avoided, thereby further improving the reliability and user experience of the present application, so that the hydrogen-rich water cup can continuously and effectively provide users with water that meets their needs.
[0103] In one embodiment, the step of acquiring a target water treatment control solution according to the current time period and a solution library corresponding to the target user identifier in the water treatment instruction includes:
[0104] S31: determining an initial water treatment control plan according to the current time period and a plan library corresponding to the target user identifier in the water treatment instruction;
[0105] Specifically, according to the current time period and the solution library corresponding to the target user identifier in the water treatment instruction, the screened water treatment control solution is used as the initial water treatment control solution.
[0106] S32: Obtain the current actual ambient temperature, current water quality data and historical drinking water data;
[0107] The temperature of the environment where the hydrogen-rich water cup is located is obtained, and the obtained actual ambient temperature is used as the current actual ambient temperature.
[0108] Optionally, a water quality sensor can be installed in the hydrogen-rich water cup to detect the water quality in the water holding chamber. Thus, the data detected by the water quality sensor in real time is obtained as the current water quality data.
[0109] You can obtain historical water drinking data from the preset storage space, from the client, or from a third-party application.
[0110] Historical drinking water data describes the drinking water data in history.
[0111] Optionally, historical drinking water data includes: time and water treatment control plan.
[0112] Optionally, the historical drinking water data includes: time, water treatment control scheme and drinking water evaluation data. The drinking water evaluation data is the user's evaluation data on the water in the hydrogen-rich water cup.
[0113] S33: Generate first adjustment data according to the initial water treatment control scheme, and the current actual ambient temperature, the current water quality data, and the historical drinking water data acquired in step S32;
[0114] Optionally, the first adjustment data is determined by a table lookup method based on the initial water treatment control scheme, the current actual ambient temperature, the current water quality data and the historical drinking water data.
[0115] Optionally, a regular expression is used to calculate the index value of each evaluation index based on the initial water treatment control scheme, the current ambient temperature, the current water quality data and the historical drinking water data; and a table lookup method is used to determine the first adjustment data based on each index value.
[0116] Optionally, the initial water treatment control scheme, the current ambient temperature, the current water quality data and the historical drinking water data are spliced and input into a pre-trained adjustment data prediction model for classification prediction, and the vector element with the largest value is selected from the predicted vector, and the classification category corresponding to the vector element is used as the first adjustment data.
[0117] The pre-trained adjustment data prediction model is a pre-trained multi-classification model. The model structure and model training method of the adjustment data prediction model can be selected from existing technologies and will not be described in detail here.
[0118] S34: updating the initial water treatment control scheme according to the first adjustment data to obtain the target water treatment control scheme.
[0119] Specifically, the initial water treatment control scheme is replaced and updated according to the first adjustment data, and the initial water treatment control scheme that has been replaced and updated is used as the target water treatment control scheme.
[0120] This embodiment updates the initial water treatment control scheme based on the initial water treatment control scheme, the current ambient temperature, the current water quality data and the historical drinking water data, so that the target water treatment control scheme is more in line with the time period, water quality, ambient temperature, and water usage habits, and meets the water use needs in different scenarios.
[0121] In one embodiment, before the step of determining the initial water treatment control plan based on the current time period and the plan library corresponding to the target user identifier in the water treatment instruction, the method further includes:
[0122] S3111: Acquire a solution generation instruction based on the interaction module;
[0123] The solution generation instruction is an instruction for generating a solution library for a user corresponding to the target user identifier in the water treatment instruction.
[0124] Specifically, the solution generation instruction input by the user through the interaction module may be obtained, or the solution generation instruction sent by a third-party application may be obtained through the interaction module.
[0125] S3112: Based on the interaction module, obtain and store the solution library corresponding to the target user identifier, wherein the solution library corresponding to the target user identifier is generated according to user basic information, physical data and disease data.
[0126] User basic information includes: gender, age, and occupation. Physical data describes the user's physical constitution. Disease data describes the user's illness.
[0127] Optionally, the program generation instruction is parsed to obtain basic user information, physical data and disease data.
[0128] Optionally, in response to the solution generation instruction, basic user information, physical data and disease data input by the user are obtained.
[0129] Optionally, in response to the solution generation instruction, basic information, physical data and disease data of the user are obtained from a third-party application or a preset storage space.
[0130] A target solution group identifier is determined based on the user basic information, the physical fitness data, and the disease data. Water treatment control solutions for each time period are obtained from a preset standard library based on the target solution group identifier, and the obtained water treatment control solutions for each time period are stored in the solution library corresponding to the target user identifier.
[0131] Alternatively, a table of user basic information, physical data, and disease data may be generated in advance based on limited research and experimentation. In actual application, a table lookup method may be used to determine the target solution group identifier based on the actual user basic information, physical data, and disease data.
[0132] Optionally, training data can be acquired in advance based on limited research and experimentation, and a regimen recommendation model can be trained based on the acquired training data. In actual application, the user's basic information, the physical condition data, and the disease data are then concatenated and input into the pre-trained regimen recommendation model for classification prediction. The vector element with the largest value is extracted from the vector obtained by classification prediction, and the classification category (regimen group identifier) corresponding to the extracted vector element is used as the target regimen group identifier.
[0133] The scheme group identifier includes at least one scheme identifier, which can be data that uniquely identifies a water treatment control scheme, such as a scheme name or a scheme ID.
[0134] The solution library corresponding to the target user identifier is obtained from the client through the communication connection between the interaction module and the client, and the solution library corresponding to the target user identifier is stored in the storage space of the hydrogen-rich water cup.
[0135] This embodiment generates the solution library corresponding to the target user identifier based on the user basic information, the physical data, and the disease data. By fully integrating the user basic information, the physical data, and the disease data to construct the solution library, initial water treatment control solutions can be accurately tailored for different users to ensure that the solutions are highly adapted to the users' unique conditions. Both the particularity of the physical constitution and the influencing factors of the disease can be comprehensively considered in the solution library, thereby making the water treatment control solution more scientific, reasonable, and targeted, and meeting the personalized needs of users to a great extent.
[0136] In one embodiment, before the step of determining the initial water treatment control plan based on the current time period and the plan library corresponding to the target user identifier in the water treatment instruction, the method further includes:
[0137] S3121: Acquire a solution sharing instruction based on the interaction module;
[0138] The solution sharing instruction is an instruction to obtain water treatment control solutions recommended by other users or management users.
[0139] Specifically, the solution sharing instruction input by the user through the interaction module may be obtained, or the solution sharing instruction sent by a third-party application may be obtained through the interaction module.
[0140] S3122: Based on the interactive module, a water treatment control solution is obtained according to the target solution group identifier in the solution sharing instruction, and a solution library corresponding to the target user identifier in the water treatment instruction is updated.
[0141] Specifically, through the interactive module, a water treatment control solution is obtained from a client or other hydrogen-rich water cup according to the target solution group identifier in the solution sharing instruction, and the obtained water treatment control solution is replaced and updated in the solution library corresponding to the target user identifier in the water treatment instruction. In this way, all or part of the water treatment control solutions in the solution library corresponding to the target user identifier in the water treatment instruction are updated.
[0142] This embodiment obtains the water treatment control scheme according to the target scheme group identifier in the scheme sharing instruction, updates the scheme library corresponding to the target user identifier in the water treatment instruction, thereby realizing the sharing of the water treatment control scheme, and achieving efficient and accurate sharing of the water treatment control scheme among different users, so that users can easily obtain and use specific water treatment control schemes, and promote the circulation of information and sharing of resources.
[0143] In one embodiment, after the step of controlling the hydrogen-rich water cup to perform water treatment according to the target water treatment control scheme and obtaining a water treatment end signal, the method further includes:
[0144] S61: Based on the interaction module, obtaining drinking water evaluation data corresponding to the water treatment instruction;
[0145] The drinking water evaluation data corresponding to the water treatment instruction is evaluation data of the water in the hydrogen-rich water cup (water obtained by water treatment based on the water treatment instruction) by the user corresponding to the water treatment instruction.
[0146] Optionally, the drinking water evaluation data describes a level.
[0147] Optionally, the drinking water evaluation data describes an evaluation score.
[0148] Optionally, the user inputs drinking water evaluation data through the client.
[0149] Optionally, the user inputs drinking water evaluation data through the display screen of the hydrogen-rich water cup.
[0150] Optionally, the user inputs drinking water evaluation data through the operation button 232 and / or the display screen 231 of the hydrogen-rich water cup (for example, pressing once indicates an evaluation score of 1, and pressing twice indicates an evaluation score of 2).
[0151] S62: generating second adjustment data according to the drinking water evaluation data corresponding to the water treatment instruction and the target water treatment control scheme;
[0152] Specifically, the second adjustment data is determined by using a table lookup method according to the drinking water evaluation data corresponding to the water treatment instruction and the target water treatment control scheme.
[0153] S63: Update the solution library corresponding to the target user identifier according to the second adjustment data.
[0154] Specifically, according to the second adjustment data, the water treatment control scheme corresponding to the target water treatment control scheme in the scheme library corresponding to the target user identifier is replaced and updated.
[0155] This embodiment generates second adjustment data based on the drinking water evaluation data corresponding to the water treatment instruction and the target water treatment control scheme to update the scheme library corresponding to the target user identifier, thereby realizing self-learning of the scheme, which is conducive to improving the adaptability of the scheme to the user.
[0156] See also Figure 4 As shown, in one embodiment, a device for adaptively controlling an interactive hydrogen-rich water cup is provided. The device is used to control a hydrogen-rich water cup. The hydrogen-rich water cup is provided with an interactive module. The device includes:
[0157] An instruction acquisition module 11 is used to acquire water treatment instructions based on the interaction module;
[0158] A time period determination module 12 is configured to obtain a current time period according to the water treatment instruction;
[0159] a solution acquisition module 13, configured to acquire a target water treatment control solution according to the current time period and a solution library corresponding to the target user identifier in the water treatment instruction, wherein the solution library corresponding to the target user identifier is determined based on the interaction module;
[0160] The water treatment control module 14 is used to control the hydrogen-rich water cup to perform water treatment according to the target water treatment control scheme and obtain a water treatment end signal.
[0161] This embodiment obtains water treatment instructions and determines the current time period based on the interactive module, and then obtains a target water treatment control scheme corresponding to the current time period and the target user identifier. Through the target water treatment control scheme, flexible and precise control of the water treatment process of the hydrogen-rich water cup is achieved, and interactive-based adaptive control of the hydrogen-rich water cup is achieved, so that the hydrogen-rich water cup can better adapt to drinking water needs in different scenarios.
[0162] In one embodiment, the apparatus further comprises: a supplementary processing control module, wherein the supplementary processing control module is configured to:
[0163] In response to the water treatment end signal, obtaining the current actual ambient temperature and using it as the first temperature;
[0164] determining target interval data based on the first temperature;
[0165] According to the target interval data, the current water volume in the hydrogen-rich water cup is obtained;
[0166] If the current water volume in the hydrogen-rich water cup is greater than the water volume threshold, the current actual ambient temperature is obtained and used as the second temperature. According to the second temperature, the supplementary water treatment plan corresponding to the target water treatment control plan is updated to obtain a water treatment plan to be treated. According to the water treatment plan to be treated, the hydrogen-rich water cup is controlled to perform water treatment, a supplementary treatment end signal is obtained, and in response to the supplementary treatment end signal, the target interval data is initialized to a null value.
[0167] If the current water volume in the hydrogen-rich water cup is less than or equal to the water volume threshold, the target interval data is initialized to a null value.
[0168] In one embodiment, the step of acquiring the target water treatment control scheme according to the current time period and the scheme library corresponding to the target user identifier in the water treatment instruction in the scheme acquisition module 13 includes:
[0169] determining an initial water treatment control plan according to the current time period and a plan library corresponding to the target user identifier in the water treatment instruction;
[0170] Obtain the current actual ambient temperature, current water quality data and historical drinking water data;
[0171] generating first adjustment data according to the initial water treatment control scheme, the current actual ambient temperature, the current water quality data, and the historical drinking water data;
[0172] The initial water treatment control scheme is updated according to the first adjustment data to obtain the target water treatment control scheme.
[0173] In one embodiment, the apparatus further includes: a solution library generation module, wherein the solution library generation module is configured to:
[0174] Based on the interaction module, obtaining a solution generation instruction;
[0175] Based on the interaction module, the solution library corresponding to the target user identifier is acquired and stored, wherein the solution library corresponding to the target user identifier is generated according to user basic information, physical data and disease data.
[0176] In one embodiment, the apparatus further includes a sharing module configured to:
[0177] Based on the interaction module, obtaining a solution sharing instruction;
[0178] Based on the interactive module, a water treatment control solution is obtained according to the target solution group identifier in the solution sharing instruction, and a solution library corresponding to the target user identifier in the water treatment instruction is updated.
[0179] In one embodiment, the apparatus further comprises: a self-learning module, wherein the self-learning module is configured to:
[0180] Based on the interactive module, obtaining drinking water evaluation data corresponding to the water treatment instruction;
[0181] generating second adjustment data according to the drinking water evaluation data corresponding to the water treatment instruction and the target water treatment control scheme;
[0182] The solution library corresponding to the target user identifier is updated according to the second adjustment data.
[0183] In one embodiment, a hydrogen-rich water cup is provided. The hydrogen-rich water cup includes an interaction module, a memory, a processor, and a computer program stored in the memory and executable on the processor. The processor is in communication with the interaction module. When the processor executes the computer program, the following steps are implemented:
[0184] Based on the interactive module, obtaining water treatment instructions;
[0185] According to the water treatment instruction, obtaining the current time period;
[0186] acquiring a target water treatment control scheme according to the current time period and a scheme library corresponding to the target user identifier in the water treatment instruction, wherein the scheme library corresponding to the target user identifier is determined based on the interaction module;
[0187] According to the target water treatment control scheme, the hydrogen-rich water cup is controlled to perform water treatment and a water treatment end signal is obtained.
[0188] This embodiment obtains water treatment instructions and determines the current time period based on the interactive module, and then obtains a target water treatment control scheme corresponding to the current time period and the target user identifier. Through the target water treatment control scheme, flexible and precise control of the water treatment process of the hydrogen-rich water cup is achieved, and interactive-based adaptive control of the hydrogen-rich water cup is achieved, so that the hydrogen-rich water cup can better adapt to drinking water needs in different scenarios.
[0189] In one embodiment, a computer-readable storage medium is provided, wherein the computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the following steps are implemented:
[0190] Based on the interactive module, obtaining water treatment instructions;
[0191] According to the water treatment instruction, obtaining the current time period;
[0192] acquiring a target water treatment control scheme according to the current time period and a scheme library corresponding to the target user identifier in the water treatment instruction, wherein the scheme library corresponding to the target user identifier is determined based on the interaction module;
[0193] According to the target water treatment control scheme, the hydrogen-rich water cup is controlled to perform water treatment and a water treatment end signal is obtained.
[0194] This embodiment obtains water treatment instructions and determines the current time period based on the interactive module, and then obtains a target water treatment control scheme corresponding to the current time period and the target user identifier. Through the target water treatment control scheme, flexible and precise control of the water treatment process of the hydrogen-rich water cup is achieved, and interactive-based adaptive control of the hydrogen-rich water cup is achieved, so that the hydrogen-rich water cup can better adapt to drinking water needs in different scenarios.
[0195] It should be noted that the functions or steps that can be implemented by the computer-readable storage medium or computer device can be referred to the relevant descriptions on the server side and the client 1 side in the aforementioned method embodiment. To avoid repetition, they will not be described one by one here.
[0196] Those skilled in the art will understand that all or part of the processes in the above-mentioned embodiments can be implemented by instructing the relevant hardware through a computer program. The computer program can be stored in a non-volatile computer-readable storage medium. When the computer program is executed, it can include the processes of the embodiments of the above-mentioned methods. Among them, any reference to memory, storage, database or other media used in the embodiments provided in this application may include non-volatile and / or volatile memory. Non-volatile memory may include read-only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable programmable ROM (EEPROM) or flash memory. Volatile memory may include random access memory (RAM) or external cache memory. By way of illustration and not limitation, RAM is available in many forms such as static RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), double data rate SDRAM (DDRSDRAM), enhanced SDRAM (ESDRAM), Synchronous Link DRAM (SLDRAM), Rambus direct RAM (RDRAM), direct memory bus dynamic RAM (DRDRAM), and memory bus dynamic RAM (RDRAM), etc.
[0197] Those skilled in the art will clearly understand that for the sake of convenience and brevity of description, only the division of the above-mentioned functional units and modules is used as an example. In actual applications, the above-mentioned functions can be distributed and completed by different functional units and modules as needed, that is, the internal structure of the device can be divided into different functional units or modules to complete all or part of the functions described above.
[0198] The embodiments described above are only used to illustrate the technical solutions of the present invention, rather than to limit the same. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. These modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention, and should all be included in the scope of protection of the present invention.
Claims
1. A method for adaptive control of an interactive hydrogen-rich water cup, characterized in that: The method is used to control a hydrogen-rich water cup, wherein the hydrogen-rich water cup is provided with an interactive module, and the method comprises: Based on the interactive module, obtaining water treatment instructions; According to the water treatment instruction, obtaining the current time period; acquiring a target water treatment control scheme according to the current time period and a scheme library corresponding to the target user identifier in the water treatment instruction, wherein the scheme library corresponding to the target user identifier is determined based on the interaction module; According to the target water treatment control scheme, the hydrogen-rich water cup is controlled to perform water treatment and a water treatment end signal is obtained; After the step of controlling the hydrogen-rich water cup to perform water treatment according to the target water treatment control scheme and obtaining a water treatment end signal, the method further includes: In response to the water treatment end signal, obtaining the current actual ambient temperature and using it as the first temperature; determining target interval data according to the first temperature, the target interval data comprising at least one time interval; According to the target interval data, the current amount of water in the hydrogen-rich water cup is obtained, wherein the current amount of water in the hydrogen-rich water cup is obtained when the interval between the current time and the time when the water treatment end signal is generated is greater than or equal to the target interval data; If the current water volume of the hydrogen-rich water cup is greater than the water volume threshold, the current actual ambient temperature is obtained and used as the second temperature. According to the second temperature, the supplementary water treatment plan corresponding to the target water treatment control plan is updated to obtain the water treatment plan to be treated. According to the water treatment plan to be treated, the hydrogen-rich water cup is controlled to perform water treatment, and a supplementary treatment end signal is obtained. In response to the supplementary treatment end signal, the target interval data is initialized to a null value to complete the re-water treatment this time, and monitoring whether re-water treatment is needed is stopped; If the water volume in the current hydrogen-rich water cup is less than or equal to the water volume threshold, the target interval data is initialized to a null value, and monitoring is stopped to determine whether water treatment is required again; The step of acquiring a target water treatment control scheme according to the current time period and a scheme library corresponding to the target user identifier in the water treatment instruction includes: determining an initial water treatment control plan according to the current time period and a plan library corresponding to the target user identifier in the water treatment instruction; Obtaining the current actual ambient temperature, current water quality data, and historical drinking water data, wherein the historical drinking water data includes: time, water treatment control plan, and drinking water evaluation data; generating first adjustment data according to the initial water treatment control scheme, the current actual ambient temperature, the current water quality data, and the historical drinking water data; updating the initial water treatment control scheme according to the first adjustment data to obtain the target water treatment control scheme; After the step of controlling the hydrogen-rich water cup to perform water treatment according to the target water treatment control scheme and obtaining a water treatment end signal, the method further includes: Based on the interactive module, obtaining drinking water evaluation data corresponding to the water treatment instruction; generating second adjustment data according to the drinking water evaluation data corresponding to the water treatment instruction and the target water treatment control scheme; The solution library corresponding to the target user identifier is updated according to the second adjustment data.
2. The adaptive control method for an interactive hydrogen-rich water cup according to claim 1, characterized in that: Before the step of determining an initial water treatment control plan based on the current time period and a plan library corresponding to the target user identifier in the water treatment instruction, the method further includes: Based on the interaction module, obtaining a solution generation instruction; Based on the interaction module, the solution library corresponding to the target user identifier is acquired and stored, wherein the solution library corresponding to the target user identifier is generated according to user basic information, physical data and disease data.
3. The adaptive control method for an interactive hydrogen-rich water cup according to claim 1, characterized in that: Before the step of determining an initial water treatment control plan based on the current time period and a plan library corresponding to the target user identifier in the water treatment instruction, the method further includes: Based on the interaction module, obtaining a solution sharing instruction; Based on the interactive module, a water treatment control solution is obtained according to the target solution group identifier in the solution sharing instruction, and a solution library corresponding to the target user identifier in the water treatment instruction is updated.
4. An adaptive control device for an interactive hydrogen-rich water cup, characterized in that: The device is used to control a hydrogen-rich water cup, and the hydrogen-rich water cup is provided with an interactive module. The device uses the interactive hydrogen-rich water cup adaptive control method according to any one of claims 1 to 3 to control the hydrogen-rich water cup. The device includes: An instruction acquisition module, configured to acquire water treatment instructions based on the interaction module; A time period determination module, configured to obtain a current time period according to the water treatment instruction; a solution acquisition module, configured to acquire a target water treatment control solution according to the current time period and a solution library corresponding to the target user identifier in the water treatment instruction, wherein the solution library corresponding to the target user identifier is determined based on the interaction module; The water treatment control module is used to control the hydrogen-rich water cup to perform water treatment according to the target water treatment control scheme and obtain a water treatment end signal.
5. A hydrogen-rich water cup, characterized in that: The hydrogen-rich water cup includes an interactive module, a memory, a processor, and a computer program stored in the memory and executable on the processor. The processor is communicatively connected to the interactive module. When the processor executes the computer program, the steps of the adaptive control method for an interactive hydrogen-rich water cup as claimed in any one of claims 1 to 3 are implemented.
6. A computer-readable storage medium, characterized in that The computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the steps of the method for adaptive control of an interactive hydrogen-rich water cup according to any one of claims 1 to 3 are implemented.
Citation Information
Patent Citations
Water cup and method for controlling concentration of hydrogen dissolved in water
CN115088999A
Control method and device of intelligent water drinking equipment and electronic equipment
CN116998882A