Interactive Method, Device, Faucet and Storage Medium for Mineralized Effluent
By obtaining and displaying the water effluent parameter information of designated personnel, and personalizing the addition of mineral elements to pure water, the problem that the existing technology cannot meet the needs of individuals at different physiological stages is solved, personalized drinking water distribution is realized, and physical health is improved.
Patent Information
- Application Number
- CN202510383719.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-28
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2045-03-28
AI Technical Summary
The existing drinking water technology cannot be personalized to meet the specific needs of different individuals and cannot meet the individual's needs for minerals in water at different physiological stages.
By obtaining the water effluent instructions of the designated personnel, when the water effluent instructions are mineral effluents, multiple target preset water effluent parameters information and corresponding estimated time are obtained and displayed. The target preset water effluent parameters information selected by the designated personnel are received, and mineral elements are added to the pure water based on this information, and the water quality information after the addition is displayed.
The specific needs of designated personnel are personalized to enable designated personnel to supplement the required nutrients and maintain their health.
Smart Images

Figure CN119874006B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of interaction of mineralized effluent, and particularly to an interaction method, device, faucet and storage medium for mineralized effluent. Background Art
[0002] With the improvement of people's living standards and the enhancement of health awareness, the quality and nutritional components of drinking water have received increasing attention. Water is not only the basic substance for maintaining life but also an important medium for physical metabolism and physiological functions. Therefore, how to ensure that drinking water can meet the health needs of individuals has become an urgent problem to be solved.
[0003] Although existing drinking water technologies have made some progress in supplementing mineral elements, such as enhancing the nutritional value of water by adding minerals such as calcium, magnesium, and potassium, these solutions are usually "one-size-fits-all". Since people's physical conditions vary, including age, gender, physical fitness, health status, etc., and even the same person may have different requirements for minerals in water at different physiological stages (such as after exercise, during the recovery period of illness, etc.). For example, after intense training, athletes lose a large amount of water and electrolytes from their bodies, and they may need a specific ratio of potassium and sodium to quickly restore fluid balance. For some elderly people or patients with chronic diseases, they may need to reduce the intake of certain minerals or supplement specific nutrients to maintain good health. Therefore, existing technical solutions cannot be customized according to the specific needs of different individuals. Summary of the Invention
[0004] Based on this, in view of the existing interaction problems of mineralized effluent, an interaction method, device, faucet and storage medium for mineralized effluent are proposed.
[0005] An interaction method for mineralized effluent, the method comprising:
[0006] Obtaining an effluent instruction of a specified person;
[0007] When the effluent instruction is for mineral effluent, obtaining a plurality of target preset effluent parameter information and corresponding estimated durations and displaying them;
[0008] Receiving the target preset effluent parameter information selected by the specified person as water quality parameter information;
[0009] Adding mineral elements to preset pure water according to the water quality parameter information and obtaining the water quality information after the addition is completed;
[0010] Displaying the mineral elements contained in the water quality to the specified person.
[0011] Further, the step of obtaining multiple target preset water outlet parameter information and corresponding estimated durations and displaying them when the water outlet instruction is for mineral water outlet includes:
[0012] When the water outlet instruction is for mineral water outlet, obtain the physical information of the designated person;
[0013] Based on the physical information, pre-match multiple preset water outlet parameter information;
[0014] Calculate the correlation value between the physical information and each preset water outlet parameter information, and obtain the estimated duration for the current water quality information to reach each preset water outlet parameter information;
[0015] According to the magnitudes of the respective correlation values and the estimated durations, determine a preset number of target preset water outlet parameter information from multiple preset water outlet parameter information;
[0016] Display the target preset water outlet parameter information and the corresponding estimated duration.
[0017] Further, the step of determining a preset number of target preset water outlet parameter information from multiple preset water outlet parameter information according to the magnitudes of the respective correlation values and the estimated durations includes:
[0018] Construct a first directed acyclic graph of the designated person and each preset water outlet parameter according to the value of the correlation value, and construct a second directed acyclic graph of the designated person and each preset water outlet parameter according to the value of the estimated duration; wherein, the first directed acyclic graph includes a first vertex and multiple second vertices, the first vertex is the designated person, the second vertices are preset water outlet parameter information, and the first directed acyclic graph marks the first vectors from each first vertex to each second vertex, and the modulus of the first vector is the correlation value corresponding to the first vertex to the second vertex; the second directed acyclic graph includes a third vertex and multiple fourth vertices, the third vertex is the designated person, the fourth vertices are preset water outlet parameter information, and the second directed acyclic graph marks the second vectors from each third vertex to each fourth vertex, and the modulus of the second vector is the estimated duration corresponding to the first vertex to the second vertex;
[0019] Input the first directed acyclic graph into a preset feature weighted convolutional network to obtain first correlation data, and input the second directed acyclic graph into a preset sparse graph convolutional network to obtain second correlation data;
[0020] Input the first correlation data and the second correlation data into a preset feedforward neural network to output a preset number of target preset water outlet parameter information.
[0021] Further, the step of inputting the first related data and the second related data into a preset feedforward neural network to output a preset number of target preset water quality parameter information includes:
[0022] Input the first related data into the first part of a preset feedforward neural network, and calculate the first correlation value through the formula and input the second related data into the second part of the preset feedforward neural network, and calculate the second correlation value through the formula wherein, represents the first correlation value, represents the second correlation value, i represents the i-th preset water quality parameter information, j represents the j-th matching scheme between the specified person and the preset water quality parameter information, represents the first related data of the i-th preset water quality parameter information and the specified person in the j-th matching scheme, represents the second related data of the i-th preset water quality parameter information and the specified person in the j-th matching scheme, represents the preset weight vector of the i-th preset water quality parameter information and the specified person in the j-th matching scheme, represents the Hadamard product of a and b, P represents the total number of matching schemes, n represents the number of preset water quality parameter information, represents the variance value of each preset water quality parameter information in the j-th matching scheme;
[0023] Calculate the sum value of the first correlation value and the second correlation value, and sequentially select a preset number of preset water quality parameter information from largest to smallest according to the calculated sum value as the target preset water quality parameter information.
[0024] Further, the step of calculating the correlation value between the body information and each preset water quality parameter information includes:
[0025] Determine the required target water quality parameter information according to the body information;
[0026] Calculate the Euclidean distance between the target water quality parameter information and each preset water quality parameter information, and use the Euclidean distance as the correlation value.
[0027] Further, the step of adding mineral elements to the preset pure water according to the water quality parameter information includes:
[0028] Monitor the actual water quality parameters during the adding process. When the difference between the actual water quality parameters and the water quality parameter information is less than the preset difference, it is determined that the addition is completed.
[0029] Further, the step of pre-matching multiple preset water quality parameter information based on the body information includes:
[0030] Determine the mineral elements required by the specified person based on the body information;
[0031] Pre-match multiple preset water outlet parameter information based on the required mineral elements.
[0032] An interactive device for mineralized water outlet, the device includes:
[0033] A first acquisition module, configured to acquire the water outlet instruction of the specified person;
[0034] A second acquisition module, configured to acquire multiple target preset water outlet parameter information and the corresponding estimated duration and display them when the water outlet instruction is mineral water outlet;
[0035] A receiving module, configured to receive the target preset water outlet parameter information selected by the specified person as water quality parameter information;
[0036] An adding module, configured to add mineral elements to the preset pure water according to the water quality parameter information and acquire the water quality information after the addition is completed;
[0037] A display module, configured to display the mineral elements contained in the water quality to the specified person.
[0038] A faucet, including a memory and a processor, the memory stores a computer program, when the computer program is executed by the processor, the processor is caused to execute the following steps:
[0039] Acquire the water outlet instruction of the specified person;
[0040] When the water outlet instruction is mineral water outlet, acquire multiple target preset water outlet parameter information and the corresponding estimated duration and display them;
[0041] Receive the target preset water outlet parameter information selected by the specified person as water quality parameter information;
[0042] Add mineral elements to the preset pure water according to the water quality parameter information and acquire the water quality information after the addition is completed;
[0043] Display the mineral elements contained in the water quality to the specified person.
[0044] A computer-readable storage medium stores a computer program, when the computer program is executed by a processor, the processor is caused to execute the following steps:
[0045] Acquire the water outlet instruction of the specified person;
[0046] When the water outlet instruction is for mineral water outlet, obtain multiple target preset water outlet parameter information and corresponding estimated durations and display them;
[0047] Receive the target preset water outlet parameter information selected by the designated person as the water quality parameter information;
[0048] Add mineral elements to the preset pure water according to the water quality parameter information and obtain the water quality information after the addition is completed;
[0049] Display the mineral elements contained in the water quality to the designated person.
[0050] Advantages of the present invention: By obtaining the water outlet instruction of the designated person, when the water outlet instruction is for mineral water outlet, obtain multiple target preset water outlet parameter information and corresponding estimated durations and display them, receive the target preset water outlet parameter information selected by the designated person as the water quality parameter information, add mineral elements to the preset pure water according to the water quality parameter information, and obtain the water quality information after the addition is completed, and display the mineral elements contained in the water quality to the designated person. Thus, the specific needs of the designated person can be personalized and adjusted, enabling the designated person to supplement the required nutrients and maintain good health. Description of the Drawings
[0051] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0052] Among them:
[0053] Figure 1 It is an application environment diagram of the interaction method for mineralized water outlet in an embodiment;
[0054] Figure 2 It is a schematic structural diagram of a faucet in an embodiment;
[0055] Figure 3 It is a schematic flowchart of the interaction method for mineralized water outlet in an embodiment;
[0056] Figure 4 It is a structural block diagram of the interaction device for mineralized water outlet in an embodiment;
[0057] Figure 5 It is a structural block diagram of a faucet in an embodiment. Detailed Embodiments
[0058] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0059] In the following description, reference is made to "some embodiments", which describe a subset of all possible embodiments. However, it can be understood that "some embodiments" can be the same subset or different subsets of all possible embodiments, and can be combined with each other without conflict.
[0060] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which this application belongs. The terms used herein are only for the purpose of describing the embodiments of this application and are not intended to limit this application.
[0061] Please refer to Figure 1 , the interaction device for mineralized water is integrated on the mineralized faucet. The mineralized faucet 10 can receive faucet control information from the intelligent device end 30 through the network 20; determine the water outlet mode of the mineralized faucet 10 based on the faucet control information; control the mineralized faucet 10 to discharge water based on the water outlet mode; obtain the water quality information of the water discharged from the mineralized faucet 10, where the water quality information includes the pH value and / or the total dissolved solids value; and feedback the water quality information to the intelligent device end 30 to display the water quality information through the intelligent device end 30.
[0062] In one embodiment, the mineralized faucet 10 can also be connected to a cloud server (not shown in the figure). When the user sends faucet control information through the intelligent device end 30, the cloud server can process the faucet control information and convert it into corresponding control instructions to be sent to the control module of the mineralized faucet 10 to control the mineralized faucet 10 to discharge water. In addition, the control module can also judge the water quality information and feedback it to the intelligent device end 30 for display and / or warning.
[0063] In one embodiment, please refer to Figure 2 , the mineralized faucet mainly consists of the following parts: a faucet body 1, a display module 2, a filter element assembly 3, a control module 4, a detection module, a communication module 6, a radar 7, and a water pipe 8.
[0064] Among them, the faucet body 1 is the main structure of the mineralized faucet, including a connection part and a main body part. The connection part and the main body part are rotationally connected to facilitate the user to adjust the angle and position of the faucet. An installation area is provided on the main body part for installing the display module 2. At least one display area is provided on the connection part or the main body part for installing the light-emitting unit.
[0065] The display module 2 is used to display the user interface, etc. The user interface can have multiple display areas to meet the display requirements of different information. Light-emitting units can also be set within the display areas for providing backlighting or indication functions. The color or length can be changed according to the instructions of the control module to intuitively reflect the water quality condition or remind the user to perform certain operations.
[0066] The detection module is arranged on the water supply pipeline and is used to obtain the content value of dissolved substances in the water supply pipeline (for example, the total dissolved solids value or conductivity), and transmit the obtained content value of dissolved substances to the control module for processing. The detection module includes a first detector 51 and a second detector 52.
[0067] The filter element assembly 3 is used to mineralize the water flow in the water supply pipeline. The filter element assembly 3 is arranged on the water supply pipeline. The filter element assembly 3 includes one or more alkaline filter materials 31 to improve the water quality and provide healthier and better-tasting drinking water. The filter element assembly 3 includes a water inlet end and a water outlet end, and detectors are respectively arranged at the water inlet end and the water outlet end.
[0068] The control module 4 is the intelligent core of the mineralization faucet and is respectively connected to the display module 2, the light-emitting unit, etc., and is used to control the color or length of the light-emitting unit and the display content of the display module 2. The control module 4 can intelligently adjust the water quality of the water outlet according to the user's biological information to meet the personalized needs of the user.
[0069] The communication module 6 is used to communicate with the control module 4 to achieve remote control and data transmission. The communication module 6 can transmit the content value of dissolved substances to the intelligent device terminal or the server for the user to view and manage at any time.
[0070] The radar 7 can be used to sense the approach or departure of the user, so as to automatically close the faucet and achieve a more convenient and energy-saving water use experience. The radar 7 can also be used in combination with other water quality detection sensors to jointly construct a water quality detection system. When the water quality is abnormal, the radar 7 can cooperate with the display module 2 and the light-emitting unit to send out a warning signal to remind the user to handle it in time.
[0071] The mineralization faucet can be connected to a water purifier for use, and users can conveniently obtain mineralized and purified drinking water through the mineralization faucet to meet the daily drinking water needs of the family.
[0072] The interaction method for mineralized effluent provided by this application can remotely control the mineralized faucet through the intelligent device terminal. According to the faucet control information, the water outlet mode of the mineralized faucet can be determined to provide a personalized drinking experience. Moreover, it can real-time monitor the water quality information of the effluent, such as the pH value and / or the total dissolved solids value, to ensure the health and safety of the effluent, and feedback the water quality information to the intelligent device terminal so that users can intuitively understand the water quality status and increase transparency. It can be seen that this solution can remotely manage the mineralized faucet through the intelligent device terminal to more precisely manage the water outlet mode of the mineralized faucet, meet diverse needs, and display the water quality information in a visual way on the intelligent device terminal, enhancing the user experience of obtaining water quality detection parameters. That is, remotely controlling the water outlet of the mineralized faucet through the intelligent device terminal to meet the personalized needs of users and display the water quality information, improving the intelligence level of the mineralized faucet. The following will be described in detail respectively. It should be noted that the description order of the following embodiments does not limit the priority order of the embodiments.
[0073] In the embodiments of this application, the alkaline filter material contains alkaline substances. For multiple alkaline filter materials, the types and dissolution rates of the alkaline substances contained in different alkaline filter materials are different. Therefore, the alkaline intensities of different alkaline filter materials are different, achieving different alkaline treatment effects.
[0074] The following takes two alkaline filter materials as an example to illustrate the interaction between alkaline filter materials and their effects in water treatment:
[0075] For example, in a filter element assembly, the first alkaline filter material is filled with weakly acidic ore, while the second alkaline filter material is filled with ore rich in calcium and magnesium. When the water flow first passes through the first alkaline filter material, the acidic substances precipitated from the first alkaline filter material can effectively promote the precipitation of calcium and magnesium elements in the subsequent second alkaline filter material. This promotion effect not only improves the mineralization efficiency but also makes the water quality rich in minerals beneficial to the human body after passing through the entire filter element assembly.
[0076] Another example is that in a filter element assembly, the first alkaline filter material is filled with weakly alkaline ore, while the second alkaline filter material is filled with ore containing zinc and copper. When the water flow first passes through the first alkaline filter material, the alkaline substances precipitated from the first alkaline filter material will inhibit the precipitation of zinc and copper elements in the second alkaline filter material. This inhibition relationship can control the content of certain minerals in the water.
[0077] Another example is that in a filter element assembly, the first alkaline filter material is filled with alkaline ore with different contents, while the second alkaline filter material contains calcium and magnesium ore with different contents. By adjusting the flow rate of the water flow channel between the first alkaline filter material and the second alkaline filter material, the precipitation concentration of different mineralization elements can be flexibly adjusted to meet the specific water quality requirements of different users.
[0078] In the design of filter element assemblies, the arrangement and combination methods of different filter materials are also crucial. For example, a combination of a strongly alkaline material (such as brucite) on the surface layer and a weakly alkaline material (such as calcite) on the inner layer is adopted. This design enables the filter element to rapidly release strongly alkaline substances in the initial stage, and as the usage time progresses, the weakly alkaline material in the inner layer gradually comes into play, thus ensuring that the filter element maintains a moderate alkaline strength throughout its service life.
[0079] By designing and combining different types of alkaline filter materials and their water paths, precise mineralization treatment of water quality can be achieved. This not only helps improve the safety and health of water quality but also meets the personalized needs of different users for the taste and nutritional value of water quality.
[0080] It should be noted that since different products are equipped with different alkaline filter materials, the number of preset water outlet parameter information that can be set is limited. Therefore, different specifications of preset water outlet parameter information can be set according to different alkaline filter materials, that is, the achievable preset water outlet parameter information. And due to the precipitation rate, the time required for the previous water sample to reach the water sample corresponding to the preset water outlet parameter information is also different. Some users may not be willing to wait for a long time. Therefore, providing a sufficient number of options for users to choose from can improve the diversity of choices.
[0081] As Figure 3 shown, in one embodiment, an interaction method for mineralized water outlet is provided. This method can be applied to both terminals and servers. In this embodiment, an example of application to a terminal is given. The interaction method for mineralized water outlet specifically includes the following steps:
[0082] S001: Obtain the water outlet instruction of a specified person;
[0083] S002: When the water outlet instruction is for mineral water outlet, obtain multiple target preset water outlet parameter information and the corresponding estimated duration and display them;
[0084] S003: Receive the target preset water outlet parameter information selected by the specified person as the water quality parameter information;
[0085] S004: Add mineral elements to the preset pure water according to the water quality parameter information and obtain the water quality information after the addition is completed;
[0086] S005: Display the mineral elements contained in the water quality to the specified person.
[0087] As described in the above step S001, obtain the water outlet instruction of the designated person. Among them, the water outlet instruction can be pure water outlet and mineral water outlet. The water outlet instruction can be input through the APP or by pressing a button. For example, there are two water intake buttons for pure water and mineral water. After the user selects the water intake amount and clicks to take water, if the mineral water button is clicked, the mineral ring on the user interface will light up, presenting the mineral elements contained in the water quality to the user. At the same time, if the pure water button is clicked, the user can take RO pure water. At this time, the PH (acidity and alkalinity) and TDS of the water quality on the user interface are still displayed as usual, but there are no mineral elements. In addition, the filter element assembly should include a mineralization filter element and an RO filter element. The mineralization filter element has ore materials that can precipitate various mineral elements (calcium, magnesium, strontium, metasilicic acid, potassium, sodium) and minerals that can adjust the acidity and alkalinity. Please refer to Figure 2 , detectors (mainly TDS detectors) are arranged at the front end and the rear end of the filter element respectively. When taking water, the TDS difference (ΔTDS) detected before and after is processed by signals and can be presented on the user interface. Please refer to Figure 2 , and at the same time, an RO filter element is provided at the front end of the detector, and the water circuit is divided into a mineralized water circuit passing through the mineralization filter element and a pure water circuit through a control valve. The user can select pure water or mineralized water through the interface. If it is pure water, it will only come out after passing through the RO filter element. If it is mineralized water, it will pass through the RO filter element and the mineralization filter element at the same time. For information display, analyze through the detector data: if the ΔTDS is within the threshold range, the mineral ring on the user interface will light up and be presented to the user when taking water. When the ΔTDS is lower than the threshold range, the mineral ring on the user interface will not light up, and the user will be notified through the APP or other means that the minerals in the filter element have been consumed. When the ΔTDS is higher than the threshold range, the mineral ring on the user interface will be red, and the user will be informed through the APP or other means that the minerals exceed the standard. The entire water intake process will present the water quality PH situation in real time through the light bar on the user interface according to the ΔTDS–PH relationship curve. When the PH value is lower or higher than the set value of the light bar, the light bar will flash red as a whole, and the APP or other means will prompt too high or too low.
[0088] The total dissolved solids (TDS) value refers to the total amount of dissolved solids in water, including the contents of both inorganic and organic substances.
[0089] RO pure water is pure water obtained by reverse osmosis (RO) technology.
[0090] As described in the above step S002, when the water outlet instruction is for mineral water, obtain multiple target preset water outlet parameter information and the corresponding estimated duration and display them. Collect multiple target preset water outlet parameter information related to mineral water, such as mineral types, concentrations, ratios, etc. Obtain the estimated duration corresponding to each parameter, which can be specifically estimated based on existing data. Display the collected target preset water outlet parameter information and its estimated duration to the designated person for selection and confirmation.
[0091] As described in the above step S003, receive the target preset water outlet parameter information selected by the designated person as the water quality parameter information, that is, receive the target preset water outlet parameter information selected by the designated person from them as the final water quality parameter information. After the addition is completed, obtain the new water quality information and confirm whether each mineral parameter meets the standard.
[0092] As described in the above step S004, display the mineral elements contained in the water quality to the designated person, and display the mineral elements and their concentrations contained in the final water quality to the designated person for confirmation or subsequent processing.
[0093] As described in the above step S004, add mineral elements to the preset pure water according to the water quality parameter information, and obtain the water quality information after the addition is completed. According to the selected water quality parameter information, add the corresponding mineral elements to the preset pure water.
[0094] In one embodiment, step S002 of obtaining multiple target preset water outlet parameter information and the corresponding estimated duration and displaying them when the water outlet instruction is for mineral water includes:
[0095] S1: When the water outlet instruction is for mineral water, obtain the physical information of the designated person;
[0096] S2: Based on the physical information, pre-match multiple preset water outlet parameter information;
[0097] S3: Calculate the correlation value between the physical information and each preset water outlet parameter information, and obtain the estimated duration for the current water quality information to reach each preset water outlet parameter information;
[0098] S4: Determine a preset number of target preset water outlet parameter information from multiple preset water outlet parameter information according to the magnitudes of the respective correlation values and the estimated duration;
[0099] S5: Display the target preset water outlet parameter information and the corresponding estimated duration.
[0100] As described in step S1 above, obtain the physical information of the specified person, and collect the physical information of the target user through wearable devices, mobile applications or other health monitoring tools. The physical information may include, but is not limited to: age, gender, weight, height, blood pressure, heart rate, body temperature, and other health indicators (such as blood sugar, blood lipids, etc.). The data collected can be input manually or automatically. Manual input is for the specified person to input in the corresponding APP by themselves, and automatic collection is obtained by establishing a real-time connection with each health detection tool and uploading the collected information in real time to ensure real-time and accuracy.
[0101] As described in step S2 above, pre-match multiple preset water output parameter information based on the physical information. According to the physical information of the user, match it with the preset water output parameter information. The preset water output parameter information should be based on various studies and nutritional theories, such as the recommended intake of minerals such as sodium, calcium, and magnesium in water required by adults per day, and adjustment plans under different physical conditions. Among them, the multiple preset water output parameter information specifically includes mineral components, content, pH value, etc.
[0102] As described in step S3 above, calculate the correlation value between the physical information and each preset water output parameter information, and obtain the estimated time for the current water quality information to reach each preset water output parameter information. Among them, the method of calculating the correlation value is not limited. For example, a weighted algorithm or a machine learning model can be used to determine which combination of water output parameters is most beneficial to the health of this user. In addition, obtain the estimated time for the current water quality information to reach each preset water output parameter information. The current water quality information can be obtained in advance, that is, by detecting the water quality of the drinking water. Secondly, the estimated time for the current water quality information to reach each preset water output parameter information can be determined by first determining the precipitation efficiency of each mineral and then estimating through establishing a model. In some embodiments, it can also be to perform experimental processing on the current water quality information to determine the estimated time from the current water quality information to each preset water output parameter information. Since the precipitation rate of minerals is related to the content of alkaline filter materials and temperature, of course, the time here is only an estimated time, and the actual time may be longer or shorter.
[0103] As described in step S4 above, determine a preset number of target preset water output parameter information from the multiple preset water output parameter information according to the magnitudes of the respective correlation values and the estimated time. The selection method is not limited. For example, the correlation value and the estimated time can be weighted and summed, and a certain number of target water output parameter information can be selected according to the final sum value.
[0104] As described in step S5 above, the target preset water outlet parameter information and the corresponding estimated duration are displayed. The display method is to display on the interface for interacting with the user. For example, it can be the user's mobile phone or the display screen of the device corresponding to the faucet. This application does not make any limitations on this, as long as it is convenient for the user to view. In addition, the displayed content can be in the form of charts, numbers or notifications, enabling users to intuitively understand how their drinking water will be adjusted and the potential benefits of these adjustments to their health. Thus, the specific needs of the designated person are personalized and allocated, enabling the designated person to supplement the required nutrients and maintain good health.
[0105] In one embodiment, step S4 of determining a preset number of target preset water outlet parameter information from a plurality of the preset water outlet parameter information according to the magnitudes of the respective relevant values and the estimated duration includes:
[0106] S401: Construct a first directed acyclic graph of the designated person and each of the preset water outlet parameters according to the value of the relevant value, and construct a second directed acyclic graph of the designated person and each of the preset water outlet parameters according to the value of the estimated duration; wherein, the first directed acyclic graph includes a first vertex and a plurality of second vertices, the first vertex is the designated person, the second vertices are the preset water outlet parameter information, and the first directed acyclic graph marks a first vector from each first vertex to each second vertex, and the magnitude of the first vector is the relevant value corresponding to the first vertex to the second vertex; the second directed acyclic graph includes a third vertex and a plurality of fourth vertices, the third vertex is the designated person, the fourth vertices are the preset water outlet parameter information, and the second directed acyclic graph marks a second vector from each third vertex to each fourth vertex, and the magnitude of the second vector is the estimated duration corresponding to the first vertex to the second vertex;
[0107] S402: Input the first directed acyclic graph into a preset feature-weighted convolutional network to obtain first relevant data, and input the second directed acyclic graph into a preset sparse graph convolutional network to obtain second relevant data;
[0108] S403: Input the first relevant data and the second relevant data into a preset feedforward neural network to output a preset number of target preset water outlet parameter information.
[0109] As described in step S401 above, a first directed acyclic graph of the specified person and each of the preset water outlet parameters is constructed according to the values of the relevant values, and a second directed acyclic graph of the specified person and each of the preset water outlet parameters is constructed according to the values of the estimated duration. Among them, a directed acyclic graph (DAG for short) is a special graph data structure, where the edges are directed and there are no cycles. A directed acyclic graph can well summarize specific information and facilitate subsequent processing.
[0110] As described in step S402 above, the first directed acyclic graph is input into a preset feature-weighted convolutional network to obtain first relevant data, and the second directed acyclic graph is input into a preset sparse graph convolutional network to obtain second relevant data. Among them, the preset feature-weighted network can aggregate information, specifically through , where h represents the first relevant data, L is the first vector, and w is the preset weight, so that the first relevant data can be calculated. In the sparse graph convolutional network, through the formula X (B⊙W)), where H represents the second relevant data, and W are preset parameters, X is the second directed acyclic graph, and B represents the adjacency matrix corresponding to the second directed acyclic graph, so as to obtain the second relevant data. It should be noted that after the calculation is completed, subsequent characterization needs to be performed through a feedforward neural network (FNN).
[0111] As described in step S403 above, the first relevant data and the second relevant data are input into a preset feedforward neural network to output information on a preset number of target preset water outlet parameters. That is, it is input into the preset feedforward neural network for calculation to output information on a preset number of target water outlet parameters, that is, the number of channels output in the preset feedforward neural network is the preset number. This is to avoid selecting too much target water outlet parameter information.
[0112] In one embodiment, step S403 of inputting the first relevant data and the second relevant data into a feedforward neural network to output information on a preset number of target preset water outlet parameters includes:
[0113] S4031: Input the first relevant data into the first part of a preset feedforward neural network, and calculate the first correlation value through the formula and input the second relevant data into the second part of the preset feedforward neural network, and calculate the second correlation value through the formula ; where, represents the first correlation value, represents the second correlation value, i represents the i-th preset water outlet parameter information, and j represents the j-th matching scheme between the specified person and the preset water outlet parameter information. represents the first relevant data between the i-th preset water outlet parameter information and the specified person in the j-th matching scheme. represents the second relevant data between the i-th preset water outlet parameter information and the specified person in the j-th matching scheme. represents the preset weight vector between the i-th preset water outlet parameter information and the specified person in the j-th matching scheme. represents the Hadamard product of a and b, P represents the total number of matching schemes, and n represents the number of preset water outlet parameter information. represents the variance value of each preset water outlet parameter information in the j-th matching scheme.
[0114] S4032: Calculate the sum value of the first correlation value and the second correlation value, and sequentially select a preset number of preset water outlet parameter information from largest to smallest according to the calculated sum value as the target preset water outlet parameter information.
[0115] As described in the above steps S4031 - S4032, in order to avoid the selected target preset water outlet parameter information being too similar and improve the diversification of recommendations, the variance value of each preset water outlet parameter information in the matching scheme is introduced. Specifically, it can be seen from the formulas for calculating the first correlation value and the second correlation value that both perform importance scaling on the numerator part, and finally calculate the sum value of the first correlation value and the second correlation value as the final evaluation criterion. Sequentially select a preset number of sum values from largest to smallest according to the calculated sum values, and use the preset water outlet parameter information corresponding to the sum values as the target preset water outlet parameter information. In addition, it should be noted that the matching scheme specifically sets multiple combinations of a preset number of preset water outlet parameter information for the specified person.
[0116] In one embodiment, step S3 of calculating the correlation value between the body information and each preset water outlet parameter information includes:
[0117] S301: Determine the target water outlet parameter information required according to the body information;
[0118] S302: Calculate the Euclidean distance between the target water outlet parameter information and each preset water outlet parameter information, and use the Euclidean distance as the correlation value.
[0119] As described in the above step S301, determine the target water outlet parameter information required according to the body information. Specifically, the daily activity level of the user (such as sedentary, light exercise, moderate exercise, high-intensity exercise) can be considered, and using known nutritional data, combined with the specific body information of the user, calculate the lacking elements of the user according to relevant guidelines (such as the recommended daily mineral intake of RDA, DRI, etc.), and confirm the minerals that must be supplemented. For example, analyze historical data through a machine learning algorithm, establish a demand model of the user, and determine the target water outlet parameter information required.
[0120] As described in the above step S302, calculate the Euclidean distance between the target water outlet parameter information and each of the preset water outlet parameter information, and use the Euclidean distance as the correlation value. Record the calculated Euclidean distance as the correlation value. The smaller the Euclidean distance, the closer the target water outlet parameter is to the preset water outlet parameter, and thus it more meets the needs of the user. In some embodiments, to ensure the comparability of different types of parameters in the calculation, it is necessary to first perform a normalization process on the target water outlet parameter information and the preset water outlet parameter information. Common methods include min-max scaling or Z-score normalization.
[0121] Specifically, all optional target water outlet parameters can be displayed through a graphical interface, including information such as the corresponding nutritional components, concentrations, and impacts on health. The combination of charts, icons, and text information can be used to help the user make a choice. In some embodiments, the user can use a drop-down menu, radio box, or checkbox to select the target parameter. At the same time, multiple selection modes can be set, such as "recommended parameters", "custom selection", etc., to improve the flexibility of the user's choice. After the user makes a choice, the system should provide a confirmation button, such as "confirm selection" or "next step", to ensure that the user checks and confirms the accuracy of their choice. After confirmation, the system can feedback to the user that their choice has been successfully recorded through a pop-up window or a prompt sound. Once the user selects the target preset water outlet parameter information, the system will perform water quality adjustment. This process can be carried out in the following ways:
[0122] Water Quality Management System: The system is connected to a water purifier or water quality management device, and adjusts the composition and concentration of minerals in the water through an automated control module to ensure that they meet the target parameters selected by the user. Sensor Monitoring: Built-in sensors are used to monitor the changes in water quality in real time, and the monitoring data is compared with the target parameters for necessary fine-tuning during the adjustment process. During the adjustment process, the user can see the feedback on the real-time adjustment progress on the interface, showing the adjustment status (such as "Adding minerals", "Adjusting pH value", etc.). It is presented through a progress bar or animated graphics, enabling the user to more intuitively understand the adjustment process. Finally, after the adjustment is completed, the system will notify the user to pick up the water. In addition, on the user's device interface, through prominent graphics or signs (such as a water drop icon, green tick, etc.), it can be confirmed that the water quality parameters have reached the standards preset by the user. This visual feedback not only increases the user's sense of participation but also enhances their trust.
[0123] In one embodiment, step S4 of adding mineral elements to the preset pure water according to the water quality parameter information includes:
[0124] S4001: Monitor the actual water quality parameters during the addition process. When the difference between the actual water quality parameters and the water quality parameter information is less than a preset difference, it is determined that the addition is completed.
[0125] As described in step S4001 above, in actual practice, it is generally impossible to achieve exactly the same as the target preset water outlet parameter information. At this time, built-in sensors and monitoring devices will be used to monitor the water quality parameters. When the difference between the water quality parameters and the target preset water outlet parameter information is less than the preset difference, it is determined that the adjustment is completed. Since there are multiple parameters, it can be that the values of each parameter are less than the preset difference, or the Euclidean distance can be calculated and then the Euclidean distance is less than the preset difference. Specifically, it can be set according to the actual situation, and the present application does not make any limitations in this regard.
[0126] In one embodiment, step S2 of pre-matching multiple preset water outlet parameter information based on the body information includes:
[0127] S201: Determine the mineral elements required by the designated person based on the body information;
[0128] S202: Pre-match multiple preset water outlet parameter information based on the required mineral elements.
[0129] As described in the above steps S201 - S202, by collecting the user's body information such as age, gender, weight, height, exercise habits, past health records, etc., and then determining the mineral elements required by the specified person, algorithms (such as weighted scoring systems, similarity matching algorithms, etc.) are used to match the mineral elements required by the user with the preset water output parameters in the database, that is, multiple preset water output parameter information is pre - matched.
[0130] As Figure 4 shown, the present invention provides an interactive device for mineralized water output, and the device includes:
[0131] A first acquisition module 802, configured to acquire the water output instruction of the specified person;
[0132] A second acquisition module 804, configured to acquire multiple target preset water output parameter information and corresponding estimated durations and display them when the water output instruction is mineral water output;
[0133] A receiving module 806, configured to receive the target preset water output parameter information selected by the specified person as water quality parameter information;
[0134] An adding module 808, configured to add mineral elements to the preset pure water according to the water quality parameter information and acquire the water quality information after the addition is completed;
[0135] A display module 810, configured to display the mineral elements contained in the water quality to the specified person.
[0136] In one embodiment, the second acquisition module 804 includes:
[0137] An acquisition sub - module, configured to acquire the body information of the specified person;
[0138] A matching sub - module, configured to pre - match multiple preset water output parameter information based on the body information;
[0139] A calculation sub - module, configured to calculate the correlation value between the body information and each preset water output parameter information, and acquire the estimated duration for the current water quality information to reach each preset water output parameter information;
[0140] A determination sub - module, configured to determine a preset number of target preset water output parameter information from multiple preset water output parameter information according to the magnitudes of the respective correlation values and the estimated durations;
[0141] A display sub - module, configured to display the target preset water output parameter information and the corresponding estimated durations.
[0142] In one embodiment, the determination sub - module includes:
[0143] A directed acyclic graph construction unit for constructing a first directed acyclic graph between the specified person and each of the preset water outlet parameters according to the value of the relevant value, and constructing a second directed acyclic graph between the specified person and each of the preset water outlet parameters according to the value of the estimated duration; wherein, the first directed acyclic graph includes a first vertex and a plurality of second vertices, the first vertex is the specified person, the second vertices are preset water outlet parameter information, and the first directed acyclic graph marks a first vector from each first vertex to each second vertex, and the modulus of the first vector is the relevant value corresponding to the first vertex to the second vertex; the second directed acyclic graph includes a third vertex and a plurality of fourth vertices, the third vertex is the specified person, the fourth vertices are preset water outlet parameter information, and the second directed acyclic graph marks a second vector from each third vertex to each fourth vertex, and the modulus of the second vector is the estimated duration corresponding to the first vertex to the second vertex;
[0144] A directed acyclic graph input unit for inputting the first directed acyclic graph into a preset feature weighted convolutional network to obtain first relevant data, and inputting the second directed acyclic graph into a preset sparse graph convolutional network to obtain second relevant data;
[0145] A relevant data input unit for inputting the first relevant data and the second relevant data into a preset feedforward neural network to output a preset number of target preset water outlet parameter information.
[0146] In one embodiment, the relevant data input unit includes:
[0147] An input subunit for inputting the first relevant data into a first part of a preset feedforward neural network, and calculating a first correlation value through the formula and inputting the second relevant data into a second part of the preset feedforward neural network, and calculating a second correlation value through the formula wherein, represents the first correlation value, represents the second correlation value, i represents the i-th preset water outlet parameter information, j represents the j-th matching scheme between the specified person and the preset water outlet parameter information, represents the first relevant data of the i-th preset water outlet parameter information and the specified person in the j-th matching scheme, represents the second relevant data of the i-th preset water outlet parameter information and the specified person in the j-th matching scheme, represents the preset weight vector of the i-th preset water outlet parameter information and the specified person in the j-th matching scheme, represents the Hadamard product of a and b, P represents the total number of matching schemes, n represents the number of preset water outlet parameter information, It represents the variance value of each preset water outlet parameter information in the j-th matching scheme;
[0148] A calculation subunit, configured to calculate the sum value of the first correlation value and the second correlation value, and sequentially select a preset number of preset water outlet parameter information from largest to smallest according to the calculated sum value as the target preset water outlet parameter information.
[0149] In one embodiment, the calculation sub-module includes:
[0150] A target water outlet parameter information determination unit, configured to determine the required target water outlet parameter information according to the body information;
[0151] An Euclidean distance calculation unit, configured to calculate the Euclidean distance between the target water outlet parameter information and each of the preset water outlet parameter information, and use the Euclidean distance as the correlation value.
[0152] In one embodiment, the water quality parameter adjustment module includes:
[0153] A monitoring unit, configured to monitor the actual water quality parameters during the addition process, and determine that the addition is completed when the difference between the actual water quality parameters and the water quality parameter information is less than a preset difference.
[0154] In one embodiment, the matching sub-module includes:
[0155] A mineral element determination unit, configured to determine the required mineral elements for the specified person based on the body information;
[0156] A preset water outlet parameter information matching unit, configured to pre-match multiple preset water outlet parameter information based on the required mineral elements.
[0157] The embodiments of the present application also disclose a faucet, as Figure 5 shown, including a processor 100, at least one communication bus 200, a user interface 300, at least one external communication interface 400, and a memory 500. Among them, the processor 100 is used to provide computing and control capabilities, the communication bus 200 is configured to implement connection communication between these components, the user interface 300 may include a display screen, the external communication interface 400 may include a standard wired interface and a wireless interface, and a water quality information display method is stored in the memory 500. Among them, the processor 100 is further used to adopt the above method when executing the water quality information display method stored in the memory 500.
[0158] Optionally, in some embodiments, when the processor executes the computer program, the following steps are implemented:
[0159] Receive faucet control information from the intelligent device side; determine the water outlet mode of the mineralization faucet based on the faucet control information; control the water outlet of the mineralization faucet based on the water outlet mode; obtain the water quality information of the water outlet of the mineralization faucet, where the water quality information includes the pH value and / or the total dissolved solids value; feedback the water quality information to the intelligent device side to display the water quality information through the intelligent device side.
[0160] In an embodiment, the mineralization faucet can be remotely controlled through the intelligent device side. According to the faucet control information, the water outlet mode of the mineralization faucet can be determined to provide a personalized drinking experience, and the water quality information of the water outlet, such as the pH value and / or the total dissolved solids value, can be monitored in real time to ensure the health and safety of the water outlet, and the water quality information is feedback to the intelligent device side to enable users to intuitively understand the water quality situation and increase transparency. It can be seen that this solution can remotely manage the mineralization faucet through the intelligent device side to more precisely manage the water outlet mode of the mineralization faucet, meet diverse needs, and display the water quality information in a visual way on the intelligent device side to enhance the user experience of obtaining water quality detection parameters, that is, remotely control the water outlet of the mineralization faucet through the intelligent device side to meet the personalized needs of users and display the water quality information, improving the intelligence level of the mineralization faucet.
[0161] In one embodiment, a faucet is proposed, including a memory and a processor. The memory stores a computer program. When the computer program is executed by the processor, the processor performs the following steps:
[0162] Obtain the water outlet instruction of the designated person;
[0163] When the water outlet instruction is mineral water outlet, obtain multiple target preset water outlet parameter information and the corresponding estimated duration and display them;
[0164] Receive the target preset water outlet parameter information selected by the designated person as the water quality parameter information;
[0165] Add mineral elements to the preset pure water according to the water quality parameter information and obtain the water quality information after the addition is completed;
[0166] Show the mineral elements contained in the water quality to the designated person.
[0167] It realizes personalized deployment according to the specific needs of the designated person, enabling the designated person to supplement the required nutrients and maintain physical health.
[0168] In one embodiment, a computer-readable storage medium is proposed, storing a computer program. When the computer program is executed by a processor, the processor performs the following steps:
[0169] Obtain the water outlet instruction of the designated person;
[0170] When the water outlet instruction is for mineral water outlet, obtain multiple target preset water outlet parameter information and corresponding estimated durations and display them;
[0171] Receive the target preset water outlet parameter information selected by the specified person as the water quality parameter information;
[0172] Add mineral elements to the preset pure water according to the water quality parameter information and obtain the water quality information after the addition is completed;
[0173] Display the mineral elements contained in the water quality to the specified person.
[0174] It realizes personalized allocation according to the specific needs of the specified person, enabling the specified person to supplement the required nutrients and maintain good health.
[0175] Those of ordinary skill in the art can understand that all or part of the processes in the methods of the above embodiments can be completed by instructing relevant hardware through a computer program. The program can be stored in a non-volatile computer-readable storage medium. When the program is executed, it can include the processes of the embodiments of the above methods. Among them, any reference to a memory, storage, database, or other medium used in the various embodiments provided in this application can include non-volatile and / or volatile memories. Non-volatile memories can include read-only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable programmable ROM (EEPROM), or flash memory. Volatile memories can 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 (DDR SDRAM), enhanced SDRAM (ESDRAM), synchronous link (Synchlink) DRAM (SLDRAM), memory bus (Rambus) direct RAM (RDRAM), direct memory bus dynamic RAM (DRDRAM), and memory bus dynamic RAM (RDRAM), etc.
[0176] The technical features of the above embodiments can be combined arbitrarily. For the sake of brevity of description, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, it should be considered to be within the scope described in this specification.
[0177] The above-described embodiments merely represent several implementation manners of the present application. The description thereof is relatively specific and detailed, but it should not be construed as a limitation on the patent scope of the present application. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present application, several modifications and improvements can still be made, and these all fall within the protection scope of the present application. Therefore, the protection scope of the patent of the present application shall be subject to the appended claims.
Claims
1. An interactive method for mineralizing water, characterized in that: The method comprises: Obtain water discharge instructions from designated personnel; When the water output instruction is mineral water output, multiple target preset water output parameter information and corresponding estimated durations are obtained and displayed; Receiving the target preset water output parameter information selected by the designated person as water quality parameter information; Adding mineral elements to preset pure water according to the water quality parameter information, and obtaining water quality information after the addition is completed; Demonstrate to the designated person the mineral elements contained in the water; When the water outlet instruction is mineral water outlet, the step of obtaining a plurality of target preset water outlet parameter information and the corresponding estimated duration and displaying them includes: When the water output instruction is mineral water output, obtaining the physical information of the designated person; pre-matching a plurality of preset water output parameter information based on the body information; Calculating the correlation value between the body information and each of the preset water output parameter information, and obtaining the estimated time for the current water quality information to reach each of the preset water output parameter information; Determining a preset number of target preset water output parameter information from the plurality of preset water output parameter information according to the size of each of the related values and the estimated duration; Displaying the target preset water output parameter information and the corresponding estimated duration; The step of adding mineral elements to the preset pure water according to the water quality parameter information includes: The actual water quality parameters during the adding process are monitored, and when the difference between the actual water quality parameters and the water quality parameter information is less than a preset difference, it is determined that the adding is completed.
2. The interactive method for mineralized water according to claim 1, characterized in that: The step of determining a preset number of target preset water output parameter information from the plurality of preset water output parameter information according to the size and estimated duration of each of the related values comprises: A first directed acyclic graph of the designated personnel and each of the preset water outlet parameters is constructed according to the value of the correlation value, and a second directed acyclic graph of the designated personnel and each of the preset water outlet parameters is constructed according to the value of the estimated duration; wherein the first directed acyclic graph includes a first vertex and multiple second vertices, the first vertex is the designated personnel, the second vertex is the preset water outlet parameter information, the first directed acyclic graph marks the first vector from each first vertex to each of the second vertices, and the modulus of the first vector is the correlation value corresponding to the first vertex to the second vertex; the second directed acyclic graph includes a third vertex and multiple fourth vertices, the third vertex is the designated personnel, the fourth vertex is the preset water outlet parameter information, the second directed acyclic graph marks the second vector from each third vertex to each of the fourth vertices, and the modulus of the second vector is the estimated duration corresponding to the first vertex to the second vertex; Inputting the first directed acyclic graph into a preset feature weighted convolutional network to obtain first relevant data, and inputting the second directed acyclic graph into a preset sparse graph convolutional network to obtain second relevant data; The first relevant data and the second relevant data are input into a preset feedforward neural network to output a preset amount of target preset water output parameter information.
3. The interactive method for mineralized water according to claim 2, characterized in that: The step of inputting the first relevant data and the second relevant data into a preset feedforward neural network to output a preset number of target preset water output parameter information includes: The first relevant data is input into the first part of the preset feedforward neural network, and the formula Calculate the first correlation value, and input the second correlation data into the second part of the preset feedforward neural network, through the formula Calculate a second correlation value; wherein, represents the first associated value, represents the second association value, i represents the i-th preset water output parameter information, j represents the j-th matching scheme between the designated person and the preset water output parameter information, represents the first correlation data between the i-th preset water output parameter information and the designated person in the j-th matching scheme, represents the second related data between the i-th preset water output parameter information and the designated person in the j-th matching scheme, represents the preset weight vector between the i-th preset water output parameter information and the designated personnel in the j-th matching scheme, represents the Hadamard product of a and b, P represents the total number of matching solutions, n represents the number of preset water output parameter information, represents the variance value of each preset water outlet parameter information in the jth matching scheme; The sum of the first associated value and the second associated value is calculated, and according to the calculated sum, a preset number of preset water outlet parameter information is selected in order from large to small as the target preset water outlet parameter information.
4. The interactive method for mineralized water according to claim 1, characterized in that: The step of calculating the correlation value between the body information and each of the preset water output parameter information comprises: Determine required target water output parameter information according to the body information; The Euclidean distance between the target outlet water parameter information and each of the preset outlet water parameter information is calculated, and the Euclidean distance is used as the correlation value.
5. The interactive method for mineralized water according to claim 1, characterized in that: The step of adding mineral elements to the preset pure water according to the water quality parameter information includes: The actual water quality parameters during the adding process are monitored, and when the difference between the actual water quality parameters and the water quality parameter information is less than a preset difference, it is determined that the adding is completed.
6. The interactive method for mineralized water according to claim 1, characterized in that: The step of pre-matching a plurality of preset water output parameter information based on the body information comprises: determining the mineral elements required by the designated person based on the physical information; Pre-match multiple preset water output parameter information based on the required mineral elements.
7. An interactive device for mineralizing water, characterized in that: The device comprises: The first acquisition module is used to obtain the water discharge instruction of the designated person; A second acquisition module is used to acquire and display a plurality of target preset water output parameter information and corresponding estimated durations when the water output instruction is mineral water output; A receiving module, used for receiving the target preset water output parameter information selected by the designated person as water quality parameter information; An adding module, used for adding mineral elements to the preset pure water according to the water quality parameter information, and obtaining the water quality information after the addition is completed; A display module, used to display the mineral elements contained in the water quality to the designated person; The second acquisition module includes: The acquisition submodule is used to obtain the physical information of the specified person; A matching submodule, used for pre-matching a plurality of preset water output parameter information based on the body information; A calculation submodule, used to calculate the correlation value between the body information and each of the preset water output parameter information, and obtain the estimated time for the current water quality information to reach each of the preset water output parameter information; A determination submodule, configured to determine a preset number of target preset water outlet parameter information from the plurality of preset water outlet parameter information according to the magnitude and estimated duration of each of the related values; A display submodule, used to display the target preset water output parameter information and the corresponding estimated duration; The adding module comprises: The monitoring unit is used to monitor the actual water quality parameters during the adding process. When the difference between the actual water quality parameters and the water quality parameter information is less than a preset difference, it is determined that the adding is completed.
8. A computer-readable storage medium, characterized in that: A computer program is stored, and when the computer program is executed by a processor, the processor executes the steps of the interactive method for mineralizing water as claimed in any one of claims 1 to 6.
9. A faucet, characterized in that: The faucet includes a memory and a processor, wherein the memory stores a computer program, and when the computer program is executed by the processor, the processor executes the steps of the interactive method for mineralizing water as claimed in any one of claims 1 to 6.
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