Cooker control method and device, electronic equipment and storage medium
By installing an oscillation wave recognition module on the stove, the stove's working mode can be adjusted using tapping or voice signals. This solves the problems of inflexible stove control and the impact of oil and water stains, enabling flexible and customizable stove control, improving user experience and extending equipment lifespan.
Patent Information
- Application Number
- CN202011344886.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2020-11-26
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2040-11-26
AI Technical Summary
Existing stove control methods are not flexible and convenient, and dirt such as oil stains and water stains can hinder stove control, causing users to operate the stove insensitively or accidentally trigger mode changes, thus affecting its service life.
An oscillation wave recognition module is used to detect oscillation wave signals. By recognizing the user's tapping or voice commands, the stove's working mode can be flexibly adjusted, including the tapping function area and the voice module, to achieve the switching of customized working modes and the adjustment of firepower.
It enables flexible control of the stove's operating mode in the kitchen environment, avoids the impact of oil and water stains on control accuracy, frees up the user's hands, reduces misoperation, and extends the stove's service life.
Smart Images

Figure CN112524651B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of smart appliance technology, specifically to a stove control method, device, electronic device, and storage medium. Background Technology
[0002] Stoves are indispensable cooking tools for both households and the catering industry, including hotels and restaurants.
[0003] Currently, cooktops are generally controlled by push-button switches or rotary knobs to adjust the heat, and touch controls are also an option. However, regardless of the method, when short, quick cooking is required, such as stir-frying, or for less experienced cooks who need to stir-fry while simultaneously adjusting the heat, it can be difficult to control the cooktop's heat. While some smart cooktop controls are programmed to automatically adjust the heat based on the operating mode, experienced chefs often find this method too rigid.
[0004] Therefore, existing stove control methods suffer from the technical problem that they cannot flexibly and conveniently control the stove, and cannot solve the problem that oil stains, water stains and other dirt hinder stove control. Summary of the Invention
[0005] This application provides a stove control method, device, electronic device, and storage medium to solve the technical problems in the prior art where stove control cannot flexibly and conveniently control the stove, and where oil stains, water stains, and other contaminants hinder stove control.
[0006] In a first aspect, this application provides a stove control method, applied to a stove including an oscillation wave recognition module, the oscillation wave recognition module being used to detect oscillating mechanical waves of a preset frequency, the method comprising:
[0007] In a preset standby state, the oscillation wave signal received by the oscillation wave recognition module is detected in real time;
[0008] If the oscillation wave signal satisfies the state change condition, then a state change command is determined;
[0009] The cooking parameters of the stove's preset working mode are updated according to the status change instruction, so that the stove can work according to the new customized working mode.
[0010] In one possible design, determining the state change command if the oscillation wave signal satisfies the state change condition includes:
[0011] Using an oscillating wave identification model, the characteristics of the oscillating wave are determined based on the oscillating wave signal;
[0012] Based on the oscillation wave characteristics and the on / off characteristics of each preset working mode, the on / off command of the preset working mode is determined, and the state change command includes the on / off command.
[0013] In one possible design, determining the state change command if the oscillation wave signal satisfies the state change condition further includes:
[0014] Using the oscillation wave identification model, the change parameters of the intermediate stage corresponding to the operating program are determined according to the operating program of the preset working mode and the oscillation wave signal;
[0015] The custom instruction for the intermediate stage is determined based on the state update parameters, and the state change instruction includes the custom instruction.
[0016] Optionally, the oscillation wave recognition module includes a voice module, which is installed in the rotary switch on the stove.
[0017] In one possible design, the cooktop includes a tapping function area, whereby the user taps different areas of the tapping function area to generate oscillating wave signals with different oscillation frequencies.
[0018] Optionally, the oscillation wave signal includes: a voice signal, a striking signal, an ultrasonic signal, and a composite vibration signal composed of at least two mechanical waves.
[0019] In one possible design, after updating the operating parameters of the stove's preset operating mode according to the state change instruction, the method further includes:
[0020] The working status of the stove after the change is displayed on the screen or through the speaker.
[0021] Secondly, this application provides a stove control device, comprising:
[0022] The oscillation wave identification module is used to receive oscillation wave signals in a preset standby state.
[0023] The processing module is used to detect the oscillation wave signal in real time, and if the oscillation wave signal meets the state change conditions, it determines the state change command.
[0024] The processing module is also used to update the working parameters of the preset working mode of the stove according to the status change instruction, so that the stove can work according to the new custom working mode.
[0025] In one possible design, the processing module is configured to determine a state change instruction if the oscillation wave signal satisfies the state change condition, including:
[0026] The processing module is used to determine the characteristics of the oscillation wave based on the oscillation wave signal using an oscillation wave identification model.
[0027] The processing module is further configured to determine the on / off command of the preset working mode based on the oscillation wave characteristics and the on / off characteristics of each preset working mode, wherein the state change command includes the on / off command.
[0028] In one possible design, the processing module, configured to determine a state change instruction if the oscillation wave signal satisfies the state change condition, further includes:
[0029] Using the oscillation wave identification model, the change parameters of the intermediate stage corresponding to the operating program are determined according to the operating program of the preset working mode and the oscillation wave signal;
[0030] The custom instruction for the intermediate stage is determined based on the state update parameters, and the state change instruction includes the custom instruction.
[0031] Optionally, the oscillation wave recognition module includes a voice module, which is installed in the rotary switch on the stove.
[0032] In one possible design, the cooktop includes a tapping function area, whereby the user taps different areas of the tapping function area to generate oscillating wave signals with different oscillation frequencies.
[0033] Optionally, the oscillation wave signal includes: a voice signal, a striking signal, an ultrasonic signal, and a composite vibration signal composed of at least two mechanical waves.
[0034] In one possible design, the processing module, after updating the operating parameters of the stove's preset operating mode according to the state change instruction, further includes:
[0035] The processing module is also used to output the changed working status of the stove using a display screen or speaker.
[0036] Thirdly, this application provides an electronic device, comprising:
[0037] Processor; and,
[0038] Memory for storing the executable instructions of the processor;
[0039] The processor is configured to execute any of the possible cooktop control methods provided in the first aspect by executing the executable instructions.
[0040] Fourthly, this application provides a cooktop that includes the electronic device described in the third aspect.
[0041] Fifthly, this application also provides a storage medium storing a computer program for executing any of the possible stove control methods provided in the first aspect.
[0042] This application provides a stove control method, device, electronic device, and storage medium. In a preset standby state, an oscillation wave recognition module installed on the stove receives oscillation wave signals. If the oscillation wave signal meets the state change conditions, a state change command is determined, and the operating parameters of the stove's preset operating mode are updated according to the state change command, so that the stove operates according to the new customized operating mode. This solves the technical problems of existing stove controls that cannot flexibly and conveniently control the stove, and that cannot solve the problem of oil stains, water stains, and other contaminants hindering stove control. It achieves the technical effect of using oscillation wave signals to flexibly control the switching on and off of different operating modes of the stove, as well as modifying or customizing the operating mode, and avoids the impact of oil stains and water stains on the stove's control sensitivity and accuracy. It also frees the user's hands, eliminating the need for frantic manual control of the stove. Attached Figure Description
[0043] To more clearly illustrate the technical solutions in this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0044] Figure 1 A schematic diagram illustrating an application scenario for a stove equipped with an oscillation wave recognition module provided in this application;
[0045] Figure 2 A schematic flowchart illustrating a stove control method provided in an embodiment of this application;
[0046] Figure 3 A schematic flowchart illustrating another stove control method provided in this application embodiment;
[0047] Figures 4a-4b This is a schematic diagram of the structure of the rotary switch provided in the embodiments of this application;
[0048] Figure 5 A schematic diagram illustrating another application scenario of a stove with an oscillation wave recognition module provided in this application;
[0049] Figure 6 This is a structural schematic diagram of a stove control device provided in this application;
[0050] Figure 7 This is a schematic diagram of the structure of an electronic device provided in this application. Detailed Implementation
[0051] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort, including but not limited to combinations of multiple embodiments, are within the scope of protection of this application.
[0052] The terms “first,” “second,” “third,” “fourth,” etc. (if present) in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a particular order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented, for example, in orders other than those illustrated or described herein. Furthermore, the terms “comprising” and “having,” and any variations thereof, are intended to cover a non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.
[0053] Currently, cooktops on the market are controlled manually via knobs, buttons, or touch panels to start or stop the cooktop, or to activate preset cooking modes such as stir-frying, steaming, or hot pot. This control method faces at least two problems:
[0054] First, the kitchen environment is often filled with water droplets, oil stains, and soup residue, which can easily affect the normal operation of touch switches. During cooking, splashes or drips of oil, water, or soup onto the touch switches can make them unresponsive, malfunction, or even cause accidental activation. For example, water or oil droplets might accidentally trigger other modes, such as splattered soup accidentally activating the hot pot mode switch, causing a sudden increase in heat, potentially burning the food or forcing the user to frantically change the mode. Another issue is that users often use cloths to clean up water or oil, which can easily lead to accidental activation, resulting in unintended changes to mode or heat. These factors make touch-controlled stoves inconvenient in practical applications.
[0055] Secondly, kitchen fumes, grease, and water stains are corrosive, such as acetic acid or fatty acids, which can corrode stoves. The more buttons that are exposed, the more likely users will need to maintain or replace them after use. In severe cases, this can even affect the lifespan of the stove, leading to user complaints.
[0056] Current technologies address these issues by using mobile apps to control the stove. However, research has shown that this method is not well-received by users because it drastically alters their cooking habits. Furthermore, its biggest drawback is the inability to operate the phone while cooking. Further, existing technologies have proposed fully automatic cooking, where users simply place the ingredients in the pot and control the cooking process via a mobile app. However, this method also differs significantly from traditional methods and is unsuitable for restaurants, hotels, and other catering businesses. Currently, fully automatic cooking can only handle a limited variety of dishes, and the taste does not match that of manually cooked food.
[0057] The inventive concept of this application is as follows: Taking into account existing technology and traditional manual cooking, the inventors proposed an innovative approach that minimizes the number of control buttons or touch switches, allowing users to easily and quickly operate the stove without or with minimal hand use. A stove control method using oscillating waves as the control signal is proposed.
[0058] An oscillating wave is a type of mechanical wave, generated by a vibration source that produces mechanical vibrations, which are then propagated in the form of waves through a medium. Seismic waves, sound waves, and ultrasound are all specific manifestations of oscillating waves. The size and material of the vibration source will produce oscillating waves of different frequencies, and the propagation speed of oscillating waves will also differ in different propagation media. For example, a piano uses different vibration sources to produce different sounds, i.e., different frequencies of sound waves.
[0059] There are many ways to generate oscillations in the kitchen environment. For example, the collision between the spatula and the pot during cooking will generate oscillations. Due to different propagation paths, the oscillations propagating in the air will generate sound waves through the compression of the air. Although the oscillations transmitted from the pot to the stove through the stove support cannot be heard by the user, they do exist.
[0060] Based on the diversity of oscillation waves, this application sets up an oscillation wave recognition module in the stove, and there can be multiple oscillation wave recognition modules to identify oscillation waves generated at different locations and frequencies. The oscillation wave recognition module includes a sound wave recognition module that identifies air oscillation waves.
[0061] Figure 1 This is a schematic diagram illustrating an application scenario for a stove equipped with an oscillation wave recognition module, as provided in this application. Figure 1As shown, the cooktop 100 includes a knob 101, a controller 102, a gas control valve 105, and a temperature sensor 106. The knob 101 is equipped with an oscillation wave recognition module and is used to control the entire cooktop 100 to enter a standby state or turn off the cooktop. The controller 102 receives signals from the temperature sensor 106 and the knob 101 to generate control commands and control the opening and closing degree of the gas control valve 105. The temperature sensor 106 can be installed in the center of the burner or on the cookware, transmitting signals to the controller 102 wirelessly. There can be one or more temperature sensors 106. It should be noted that the cooktop described in this application only needs to include the controller 102 and a knob equipped with an oscillation wave recognition module to implement the cooktop control method of this application.
[0062] In one possible design, the cooktop 100 also includes a tapping function area 103 and a tapping function area 104 for generating oscillating waves. By using a tapping tool such as a spatula 108 to tap different areas of the tapping function area 103, the user can switch between different preset working modes of the cooktop, while tapping different areas of the tapping function area 104 can control the firepower and temperature control.
[0063] In another possible design, the functional area 107 for generating oscillation waves can also be set in the cabinet and / or on the floor, so that the cook can generate oscillation waves by striking the functional area 107 with his feet and / or knees, which are received by the oscillation wave recognition module in the knob 101, or by the oscillation wave recognition module installed in other locations on the stove, and then the signal is transmitted to the stove controller.
[0064] In another possible design, the user can wear the vibration-generating device on their foot, triggering different sounds through foot movements. This allows the audio or sound recognition module in the vibration wave recognition module to receive the sound wave signal. Based on the correspondence between the sound wave signal and commands in the voice library, the stove's controller 102 can control the gas valve 105 to achieve different preset operating modes, such as starting / stopping or adjusting the flame.
[0065] Furthermore, users can control the stove via voice, since voice is also a sound wave, which is a type of oscillation wave.
[0066] The specific control methods for the stove are described below.
[0067] Figure 2 This is a flowchart illustrating a stove control method provided in an embodiment of this application. Figure 2 As shown, the specific steps of this stove control method include:
[0068] S201. In the preset standby state, the oscillation wave signal received by the oscillation wave recognition module is detected in real time.
[0069] In this step, the user can connect the stove to the power supply, turn on the main switch of the stove, or turn on the oscillation wave recognition mode switch to put the stove into a preset standby state that can recognize oscillation wave signals.
[0070] In this embodiment, the user turns on the rotary switch to ignite the stove. Simultaneously, the oscillation wave recognition module installed in the rotary switch enters a preset standby state. In the preset standby state, the stove may or may not be ignited. The stove can determine whether to ignite based on its operating state or mode before entering the preset standby state.
[0071] For example, when using an oscillation wave recognition module to control stir-frying, first turn the knob to ignite the flame, then sauté the oil and ingredients such as scallions, ginger, and garlic over low heat until fragrant. At this time, the oscillation wave recognition module is still in standby mode for stir-frying. Then, the user taps the function area 103 with a spatula 108 or steps on the function area 107 corresponding to the stir-frying mode, generating an oscillation wave at the frequency corresponding to the stir-frying mode. This allows the oscillation wave recognition module in the knob 101 to receive the oscillation wave signal indicating that stir-frying has started. Alternatively, the user can also say "stir-fry" to activate the stir-frying mode, transmitting sound waves to the oscillation wave recognition module in the knob 101. To stop, say "stop."
[0072] S202. If the oscillation wave signal meets the state change conditions, then determine the state change command.
[0073] In this step, not all oscillation wave signals will trigger the state change of the preset working mode. The controller 102 needs to match and compare the vibration characteristics of the oscillation wave signal with the instruction data in the wave fingerprint library. Only if the vibration characteristics corresponding to the change instruction are met can the state change instruction be determined.
[0074] For example, during cooking, the collision between the spatula and the pot can generate sound waves or vibrations that are transmitted through the oscillation. Similarly, the sound or vibration of a range hood in operation can also generate oscillations. Therefore, after the oscillation signal is detected by the oscillation recognition module, filtering and extraction of the corresponding vibration characteristics are required. Then, the signal is compared with data in the fluctuation fingerprint database to match the preset on / off signals of various modes. If the match is successful, it can be determined that the received signal is a status change signal for a preset working mode, such as stir-frying, or an on / off signal, or a heat adjustment signal.
[0075] Furthermore, unlike existing technologies that cannot change the working parameters of a preset working mode during cooking, the stove method of this embodiment can change parameters during cooking. For example, the preset stir-fry mode is to keep the heat on for 30 seconds. If the chef finds that the heat needs to be extended or shortened due to differences in the amount or type of ingredients, or that the heat needs to be changed to medium, the chef can generate oscillation waves by speaking and / or tapping the corresponding functional area on the stove. These waves are then compared and matched by the controller to obtain the corresponding state change command.
[0076] S203. Update the working parameters of the stove's preset working mode according to the status change command, so that the stove can work according to the new custom working mode.
[0077] In this step, the controller controls the opening and closing of the gas valve 105 or the degree of opening and closing according to the status change command, so as to realize the opening or closing of the preset working mode, or the change of the fire intensity, or the change of the fire intensity duration.
[0078] For example, the preset stir-fry mode starts with low heat for 30 seconds after ignition, then increases to maximum heat for 15 seconds, and then stops. However, chefs found that because serving requires cooking two ingredients simultaneously, the stir-fry time needed to be extended to 35 seconds. Users can adjust the stir-fry time by tapping the preset area or by varying the number of taps, or by speaking the desired time. This avoids the hassle of simultaneously stirring and pressing buttons or touch switches, preventing chaotic operations and ensuring the food is cooked through or burnt.
[0079] It should be noted that after a chef or user adjusts the preset operating mode (i.e., customizes a new mode), the cooktop can remind the user via a speaker whether they want to save this customized mode. If the user issues a save command, the customized mode will be saved in the database.
[0080] The stove control method provided in this embodiment receives oscillating wave signals using an oscillating wave recognition module installed on the stove in a preset standby state. If the oscillating wave signal meets the state change conditions, a state change command is determined, and the working parameters of the stove's preset working mode are updated according to the state change command, so that the stove operates according to the new customized working mode. This solves the technical problems in the prior art where stove control cannot flexibly and conveniently control the stove, and cannot solve the technical problems of oil stains, water stains, and other dirt hindering stove control. It achieves the technical effect of flexibly controlling the on / off of different working modes of the stove and modifying or customizing the working mode using oscillating wave signals, and avoids the impact of oil stains and water stains on the stove's control sensitivity and accuracy, freeing the user's hands and eliminating the technical effect of frantically controlling the stove.
[0081] Figure 3 This is a flowchart illustrating another stove control method provided in an embodiment of this application. Figure 3 As shown, the specific steps of this stove control method include:
[0082] S301. In the preset standby state, the oscillation wave signal received by the oscillation wave recognition module is detected in real time.
[0083] In this embodiment, the user can trigger a preset standby state by using a switch.
[0084] Figures 4a-4b This is a schematic diagram of the structure of a rotary switch provided in an embodiment of this application. Figure 4a As shown, pressing and rotating the knob 401 ignites the ignition. The knob 401 also has a standby rotary switch 4011 with oscillation wave recognition function on its side; that is, 4011 can be rotated independently on the cylindrical side of the knob 401 to trigger the standby state switch. Figure 4b As shown, knob 402 can also be a double-layer knob, with the upper knob used for ignition and the lower knob used for switching the standby state identified by the oscillation wave. It is understandable that multiple knob switches or other types of switches can be set to trigger the standby state, and ignition and standby state can be linked, such as entering the standby state at the same time as ignition, or entering the standby state after a preset interval after ignition.
[0085] In this embodiment, the vibration wave recognition module includes a voice module, which is installed in a rotary switch. This facilitates the reception of user voice signals and avoids contamination from kitchen dirt such as water stains and oil, which could affect voice reception or stove control. Furthermore, being located in a rotary switch prevents the voice module from overheating due to the stove flame.
[0086] In addition, this embodiment may include multiple oscillation wave recognition modules for recognizing oscillation wave signals from different tapping functional areas in the stove.
[0087] It should also be noted that the oscillation wave signal includes: voice signal, tapping signal, ultrasonic signal, and composite vibration signal composed of at least two mechanical waves. For ultrasonic signals, users can wear an ultrasonic whistle and blow air to generate ultrasonic waves of different frequencies, which are then received and identified by the corresponding oscillation wave recognition module. Combinations of two or more mechanical waves allow users more flexible control methods, such as using tapping to select the working mode and using voice to control the firepower.
[0088] S302. Using the oscillation wave identification model, determine the characteristics of the oscillation wave based on the oscillation wave signal.
[0089] Figure 5 This is a schematic diagram illustrating another application scenario for a stove with an oscillation wave recognition module provided in this application. For example... Figure 5 As shown, the cooktop includes a double-layer knob 501, a controller 502, a gas control valve 503, a burner 504, a temperature sensor 505, and an oscillation wave generator 506 mounted on the cookware. One layer of the double-layer knob 501 can be used for ignition, and the other layer can activate the standby state based on oscillation wave recognition.
[0090] When the stove is in steaming / cooking mode, steam generates mechanical waves, or oscillation signals, such as sound waves, through the oscillation wave generator 506 on the pot. By identifying the frequency of the sound waves, the amount of water remaining in the pot can be determined, because sufficient water means sufficient steam, and the amount of steam is also related to the heat level. Therefore, the oscillation wave recognition module installed in the double-layer knob 501, after receiving the oscillation wave signal generated by the oscillation wave generator 506, identifies the frequency characteristics of the sound waves, i.e., the oscillation wave characteristics.
[0091] S303. Based on the oscillation wave characteristics and the on / off characteristics of each preset working mode, determine the on / off command of the preset working mode.
[0092] In this step, the status change instruction includes the open or close instruction.
[0093] like Figure 5 As shown, when the water in the pot is about to run out during stewing or steaming, the amount of steam produced decreases. This causes a change in the frequency of the oscillation signal generated by the oscillation generator 506. If the frequency detected by S302 is lower than the preset frequency, it indicates that the water in the pot is about to boil dry. The controller can then turn off the stewing or steaming mode and switch to a low-heat simmering mode, or directly turn off the gas supply to prevent the food from burning. Furthermore, the speaker in the cooktop can emit a buzzer alarm or voice alarm to notify the user that the water is about to boil dry.
[0094] In one possible design, the stove control method determines a state change command if the oscillation wave signal meets the state change condition; it also includes:
[0095] Using the oscillation wave identification model, the change parameters of the intermediate stage of the operating program are determined based on the preset working mode operating program and the oscillation wave signal.
[0096] Custom instructions for intermediate stages are determined based on state update parameters, and state change instructions include custom instructions.
[0097] Specifically, a preset working mode can include multiple intermediate stages. For example, a stir-fry mode can include a preheating stage, an initial stir-frying stage, a high-heat stir-frying stage, and a medium-heat reducing stage; a steaming mode can include a high-heat steaming stage, a high-heat steaming stage, and a low-heat simmering stage. Each intermediate stage has corresponding heat levels and durations. However, in existing technologies, preset working modes can only be set before starting, or custom parameters can be set before starting. Parameters cannot be changed during the preset working mode, which means that the original preset or custom working modes cannot meet the flexible application needs of the stove, especially given variations in the amount and / or type of ingredients, or the addition of new ingredients during the process. Therefore, this application provides a method that, when the oscillation wave recognition model detects a user's parameter change command issued through oscillation waves such as sound waves or tapping vibrations, it can correspondingly modify the working parameters of the intermediate stage, such as the heat level and duration, thus forming a custom command.
[0098] S304. The working status of the stove after the change is output using a display screen or speaker.
[0099] In this step, the status commands of the stove modified by the user each time via the oscillation wave signal can be played out on the display screen or through the speaker. If the user modifies the working parameters of the intermediate stage of the preset working mode, the speaker will issue a voice prompt asking the user whether to save. After the user confirms, the new custom mode will be saved.
[0100] The stove control method provided in this embodiment receives oscillating wave signals using an oscillating wave recognition module installed on the stove in a preset standby state. If the oscillating wave signal meets the state change conditions, a state change command is determined, and the working parameters of the stove's preset working mode are updated according to the state change command, so that the stove operates according to the new customized working mode. This solves the technical problems in the prior art where stove control cannot flexibly and conveniently control the stove, and cannot solve the technical problems of oil stains, water stains, and other dirt hindering stove control. It achieves the technical effect of flexibly controlling the on / off of different working modes of the stove and modifying or customizing the working mode using oscillating wave signals, and avoids the impact of oil stains and water stains on the stove's control sensitivity and accuracy, freeing the user's hands and eliminating the technical effect of frantically controlling the stove.
[0101] Figure 6 This is a schematic diagram of a stove control device provided in this application. The stove control device can be implemented through software, hardware, or a combination of both.
[0102] like Figure 6 As shown, the stove control device 600 provided in this embodiment includes:
[0103] The oscillation wave identification module 601 is used to receive oscillation wave signals in a preset standby state.
[0104] The processing module 602 is used to detect the oscillation wave signal in real time, and if the oscillation wave signal meets the state change conditions, then a state change command is determined.
[0105] The processing module 602 is also used to update the working parameters of the preset working mode of the stove according to the status change instruction, so that the stove can work according to the new custom working mode.
[0106] In one possible design, the processing module 602 is configured to determine a state change command if the oscillation wave signal satisfies the state change condition, including:
[0107] The processing module 602 is used to determine the characteristics of the oscillation wave based on the oscillation wave signal using the oscillation wave identification model.
[0108] The processing module 602 is further configured to determine the start or stop instruction of the preset working mode based on the oscillation wave characteristics and the start or stop characteristics of each preset working mode, wherein the state change instruction includes the start or stop instruction.
[0109] In one possible design, the processing module 602, configured to determine a state change instruction if the oscillation wave signal satisfies the state change condition, further includes:
[0110] Using the oscillation wave identification model, the change parameters of the intermediate stage corresponding to the operating program are determined according to the operating program of the preset working mode and the oscillation wave signal;
[0111] The custom instruction for the intermediate stage is determined based on the state update parameters, and the state change instruction includes the custom instruction.
[0112] Optionally, the oscillation wave recognition module 601 includes a voice module, which is installed in the rotary switch on the stove.
[0113] In one possible design, the cooktop includes a tapping function area, whereby the user taps different areas of the tapping function area to generate oscillating wave signals with different oscillation frequencies.
[0114] Optionally, the oscillation wave signal includes: a voice signal, a striking signal, an ultrasonic signal, and a composite vibration signal composed of at least two mechanical waves.
[0115] In one possible design, the processing module 602, after updating the operating parameters of the preset operating mode of the stove according to the state change instruction, further includes:
[0116] The processing module 602 is also used to output the changed working status of the stove using a display screen or speaker.
[0117] It is worth noting that, Figure 6 The stove control device provided in the illustrated embodiment can execute the method provided in any of the above method embodiments. Its specific implementation principle, technical features, explanation of technical terms and technical effects are similar, and will not be repeated here.
[0118] Figure 7 This is a schematic diagram of the structure of an electronic device provided in this application. Figure 7 As shown, the electronic device 700 may include at least one processor 701 and a memory 702. Figure 7 The example shown is an electronic device using a processor.
[0119] The memory 702 is used to store programs. Specifically, the program may include program code, which includes computer operation instructions.
[0120] The memory 702 may include high-speed RAM memory, and may also include non-volatile memory, such as at least one disk storage device.
[0121] The processor 701 is used to execute computer execution instructions stored in the memory 702 to implement the methods described in the above embodiments.
[0122] The processor 701 may be a central processing unit (CPU), an application-specific integrated circuit (ASIC), or one or more integrated circuits configured to implement the embodiments of this application.
[0123] Optionally, the memory 702 can be either standalone or integrated with the processor 701. When the memory 702 is a device independent of the processor 701, the electronic device 700 may further include:
[0124] Bus 703 is used to connect the processor 701 and the memory 702. The bus can be an industry standard architecture (ISA) bus, a peripheral component (PCI) bus, or an extended industry standard architecture (EISA) bus, etc. Buses can be categorized as address buses, data buses, control buses, etc., but this does not mean there is only one bus or one type of bus.
[0125] Optionally, in a specific implementation, if the memory 702 and the processor 701 are integrated on a single chip, the memory 702 and the processor 701 can communicate through an internal interface.
[0126] This application also provides a stove, including Figure 7 The electronic device shown.
[0127] This application also provides a computer-readable storage medium, which may include various media capable of storing program code, such as a USB flash drive, a portable hard drive, a read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk. Specifically, the computer-readable storage medium stores program instructions, which are used in the methods described in the above embodiments.
[0128] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.
Claims
1. A hob control method, characterized by, The method is applied to a range including an oscillation wave recognition module for detecting an oscillation mechanical wave of a preset frequency, and the method comprises the following steps: In a preset standby state, an oscillation wave signal received by the oscillation wave recognition module is detected in real time; If the oscillation wave signal meets a state change condition, a state change instruction is determined; According to the state change instruction, a working parameter of a preset working mode of the range is updated, so that the range works in a new self-defined working mode; The range includes a knocking function area, and different regions of the knocking function area are knocked by a user to generate oscillation wave signals of different oscillation frequencies.
2. The hob control method according to claim 1, characterized in that, If the oscillation wave signal meets a state change condition, a state change instruction is determined, which comprises the following steps: An oscillation wave feature is determined according to the oscillation wave signal by using an oscillation wave recognition model; According to the oscillation wave feature and an opening or closing feature of each preset working mode, an opening or closing instruction of the preset working mode is determined, and the state change instruction includes the opening or closing instruction.
3. The hob control method according to claim 2, characterized in that, If the oscillation wave signal meets a state change condition, a state change instruction is determined, which further comprises the following steps: According to a running program of the preset working mode and the oscillation wave signal, a change parameter of an intermediate stage corresponding to the running program is determined by using the oscillation wave recognition model; According to the change parameter, a self-defined instruction of the intermediate stage is determined, and the state change instruction includes the self-defined instruction.
4. The hob control method according to claim 3, characterized in that, The oscillation wave recognition module includes a voice module, and the voice module is installed in a rotary knob switch on the range.
5. The hob control method according to any one of claims 1 to 4, characterized in that, After the working parameter of the preset working mode of the range is updated according to the state change instruction, the following step is further included: A working state of the range after the change is output by using a display screen or a loudspeaker.
6. A hob control device applied to a hob comprising an oscillatory wave recognition module for detecting an oscillatory mechanical wave of a predetermined frequency, characterized in that, It comprises the following: An oscillation wave recognition module is configured to receive an oscillation wave signal in a preset standby state; A processing module is configured to detect the oscillation wave signal in real time, and if the oscillation wave signal meets a state change condition, a state change instruction is determined; The processing module is further configured to update a working parameter of a preset working mode of the range according to the state change instruction, so that the range works in a new self-defined working mode; The range includes a knocking function area, and different regions of the knocking function area are knocked by a user to generate oscillation wave signals of different oscillation frequencies.
7. An electronic device, comprising: It comprises the following: A processor; And A memory is configured to store executable instructions of the processor; The processor is configured to execute the range control method in any one of claims 1 to 5 by executing the executable instructions.
8. A hob, characterized in that The electronic device of claim 7 is included.
9. A computer readable storage medium having stored thereon a computer program, characterized in that, The computer program is executed by the processor to implement the range control method in any one of claims 1 to 5.
Citation Information
Patent Citations
Cooling furnace intelligent sound control device
CN201051396Y