Atomization device and control method therefor, and computer-readable storage medium
By acquiring the characteristic information of the atomizing equipment and utilizing the configuration information in the storage area, the problems of low production efficiency and high management costs of the atomizing equipment were solved, enabling rapid adaptation and mass production of different models of products, and reducing stagnant materials and management costs.
Patent Information
- Application Number
- PCT/CN2024/144419
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-07-24
- Filing Date
- 2024-12-31
- Publication Date
- 2026-01-29
AI Technical Summary
Existing atomization equipment suffers from low production efficiency, high costs for manufacturers to manage stagnant materials, and lacks flexibility in large-scale production and software function adjustments.
By acquiring the characteristic information of the atomizing device and utilizing the configuration information in the storage area, the atomizing device can quickly adapt to the needs of different product lines, improve production efficiency and component versatility, and reduce stagnant materials and management costs.
This enables mass production of the same integrated circuit compatible with different product models, reducing manufacturers' obsolete materials and management costs, and improving production efficiency and the flexibility of software function adjustments.
Smart Images

Figure CN2024144419_29012026_PF_FP_ABST
Abstract
Description
Atomization device, control method thereof, and computer readable storage medium
[0001] Cross-reference to related applications
[0002] The present application claims priority to the Chinese patent application No. 202411000504.3, filed on July 24, 2024, the content of which is incorporated herein in its entirety. TECHNICAL FIELD
[0003] The present application relates to the field of electronic atomization technology, in particular to an atomization device, a control method thereof, and a computer readable storage medium. BACKGROUND
[0004] As a new emerging electronic consumer product, atomization devices have been rapidly popularized worldwide in recent years. With the growth of market demand, the types of atomization devices are also increasing. The software configuration and function support of different types of atomization devices are different.
[0005] In the development and production of atomization devices, a set of software is generally developed for each type of atomization device at present. The software of a product line is not suitable for the needs of other product lines, which makes it impossible to mass-produce and reduces production efficiency. When market demand changes, it is difficult to apply a chip that has already been programmed to other product projects, especially for OTP MCU, the program can only be programmed once, which will inevitably lead to an increase in the production of manufacturers' idle materials and management costs. SUMMARY
[0006] The technical problem to be solved by the present application is the low production efficiency, high idle material and management cost of manufacturers. To this end, the present application provides an atomization device, a control method thereof, and a computer readable storage medium, which can improve the universality and production efficiency of components and reduce the idle material and management cost of manufacturers.
[0007] In a first aspect, the present application provides an atomization device control method, comprising:
[0008] obtaining feature information of the atomization device;
[0009] calling corresponding configuration information from a storage area according to the feature information, and running the atomization device according to the configuration information.
[0010] The configuration information includes at least one configuration item, and the configuration item includes at least two parameters configured to correspond to different atomization devices.
[0011] Further, the processor of the atomization device is provided with at least one pin, and the obtaining of the feature information of the atomization device comprises:
[0012] sampling a voltage of the pin, determining an external resistance value of the pin according to the sampled voltage value;
[0013] determining the corresponding characteristic information according to the external resistance value;
[0014] wherein the external resistance value is configured to match the atomization device.
[0015] Further, the processor of the atomization device is provided with at least one pin, and the obtaining of the characteristic information of the atomization device comprises:
[0016] sampling a feedback signal received by the pin by scanning the atomization device through a reference signal;
[0017] determining the corresponding characteristic information according to the feedback signal;
[0018] wherein the feedback signal is configured to match the atomization device.
[0019] Further, the processor of the atomization device is provided with at least two pins, and the obtaining of the characteristic information of the atomization device comprises:
[0020] sampling a feedback signal received by the pin by scanning the atomization device through a reference signal;
[0021] determining a mapping relationship between different pins according to the feedback signal, and determining the corresponding characteristic information according to the mapping relationship;
[0022] wherein the mapping relationship is configured to match the atomization device.
[0023] Further, the configuration information comprises at least one configuration item, and the configuration item comprises any one of a lamp effect configuration item, a power configuration item, a trigger function configuration item, a sensitivity configuration item, and a state display configuration item.
[0024] Further, the calling of the corresponding configuration information from the storage area according to the characteristic information, and the running of the atomization device according to the configuration information, comprises:
[0025] sequentially calling parameters of the configuration item in the configuration information according to the characteristic information, and a corresponding function module is configured to respond according to the parameters of the configuration item;
[0026] or,
[0027] The configuration information is pre-combined into at least one running mode, the calling of the corresponding configuration information from the storage area according to the characteristic information, and the running of the atomization device according to the configuration information, comprises:
[0028] According to the feature information, a corresponding operation mode is matched, and a corresponding function module is responsive according to the operation mode.
[0029] Further, the configuration information corresponding to the feature information is called from the storage area, and the atomization device operates according to the configuration information.
[0030] According to a preset starting threshold, it is determined whether the atomization device has a suction action;
[0031] If it is determined that the suction action occurs, the configuration information corresponding to the feature information is called from the storage area, and the atomization device is responsive to the suction action according to the configuration information.
[0032] Further, the control method further comprises:
[0033] According to a preset starting threshold, it is determined whether the atomization device has a suction action;
[0034] If it is determined that the suction action occurs, the atomization device is responsive to the frequency of the suction action.
[0035] In a second aspect, the present application provides an atomization device, comprising a controller and a memory for storing a computer program, wherein the controller implements the steps of the atomization device control method described above when executing the computer program.
[0036] In a third aspect, the present application provides a computer readable storage medium, which stores a computer program, wherein the computer program implements the steps of the atomization device control method described above when executed by a controller.
[0037] Through the technical solution of the present application, on the one hand, since the storage area of the atomization device pre-stores configuration information of multiple different atomization devices, it can quickly adapt to the needs of different product lines, thereby meeting the needs of mass production and improving the universality and production efficiency of components; on the other hand, when the software function of the atomization device needs to be adjusted, the corresponding configuration information can be called again according to the feature information of the new atomization device, therefore, manufacturers can quickly and flexibly adjust the software function based on market demand and cost considerations, thereby reducing the production of manufacturers and management costs. BRIEF DESCRIPTION OF DRAWINGS
[0038] In order to more clearly illustrate the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor. In the drawings:
[0039] FIG. 1 is a flow chart of an embodiment of the method for controlling the atomization device according to an aspect of the present application;
[0040] FIG. 2 is a flow chart of an embodiment of step S10 in the method for controlling the atomization device according to an aspect of the present application;
[0041] FIG. 3 is a flow chart of an embodiment of step S10 in the method for controlling the atomization device according to an aspect of the present application;
[0042] FIG. 4 is a flow chart of an embodiment of step S10 in the method for controlling the atomization device according to an aspect of the present application;
[0043] FIG. 5 is a flow chart of an embodiment of step S20 in the method for controlling the atomization device according to an aspect of the present application;
[0044] FIG. 6 is a flow chart of an embodiment of the method for controlling the atomization device according to an aspect of the present application;
[0045] FIG. 7 is a logic structure diagram of an embodiment of the atomization device according to a second aspect of the present application. DETAILED DESCRIPTION
[0046] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, but not all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.
[0047] The atomization device and the method for controlling the same, and the computer readable storage medium provided by the present application will be further described below with reference to the drawings in the description.
[0048] Referring to FIG. 1, the method for controlling the atomization device provided by the present embodiment comprises:
[0049] Step S10: obtaining characteristic information of the atomization device;
[0050] The characteristic information in this step can be hardware characteristic information. In addition, the way of obtaining the characteristic information, in some applications, when first powered on, the characteristic information can be obtained by scanning the atomization device (for example, the PCB board) and stored; in subsequent use, the stored characteristic information is directly obtained; in other applications, the characteristic information is obtained by scanning the atomization device each time it is powered on.
[0051] Step S20: calling corresponding configuration information from the storage area according to the characteristic information, and the atomization device running according to the configuration information;
[0052] The configuration information includes at least one configuration item, and the configuration item includes at least two parameters configured to correspond to different atomization devices.
[0053] For this step, the configuration information of a plurality of different atomization devices is pre-stored in the storage area of the atomization device. For a certain atomization device, its configuration information is related to the characteristic information. In addition, it should be pointed out that the atomization device circuit includes a processor and a memory, and the configuration information is stored in the storage area of the memory. The processor and the memory can be independent devices or integrated devices, such as an OTP MCU.
[0054] Through the technical scheme of the embodiment, the characteristic information of the atomization device is obtained. Since the configuration information of the atomization device is related to the characteristic information, the corresponding configuration information can be called from the storage area according to the characteristic information, and the atomization device operates according to the configuration information.
[0055] The technical scheme of the embodiment has the following beneficial effects: first, since the configuration information corresponding to a plurality of different atomization devices is pre-stored in the storage area of the integrated circuit, the same integrated circuit can be adapted to different models of products, and the integrated circuit meeting a plurality of product models can be mass-produced through the same production line to improve production efficiency; second, when the software function of the atomization device needs to be adjusted, the corresponding configuration information can be called again according to the characteristic information of the corresponding atomization device, so that manufacturers can mass-produce integrated circuits based on market demand, and the same integrated circuit can be used to assemble different models of products, reducing the cost of production manufacturers' idle materials and classification management.
[0056] Further, in some optional embodiments, the processor of the atomization device is provided with at least one pin, as shown in FIG. 2, and the step S10 of obtaining the characteristic information of the atomization device includes:
[0057] The step S11 samples the voltage of the pin, and determines the external resistance value of the pin according to the sampled voltage value;
[0058] The step S12 determines the corresponding characteristic information according to the external resistance value; wherein the external resistance value is configured to match the atomization device.
[0059] In the embodiment, since the pins of the processors of different atomization devices are externally connected with resistors of different resistance values, in application, the resistance value of the externally connected resistor is determined by sampling the voltage of the pin of the processor, and the characteristic information of the atomization device is determined according to the resistance value.
[0060] Further, in some optional embodiments, the processor of the atomization device is provided with at least one pin, as shown in FIG. 3, and the step S10 of obtaining the characteristic information of the atomization device includes:
[0061] Step S13, the atomization device is scanned by the reference signal, and the feedback signal received by the pin is sampled;
[0062] Step S14, the corresponding feature information is determined according to the feedback signal; wherein the signal feature of the feedback signal is configured to match the atomization device.
[0063] In this embodiment, after being excited by the reference signal, the feedback signals of the pins of the processors of different atomization devices are different, for example, the pin of the processor of the first atomization device feeds back a low-level signal; the pin of the processor of the second atomization device feeds back a high-level signal. In application, after the atomization device is scanned by the reference signal, the feedback signal received by the pin of the processor is sampled, and the feature information of the atomization device is determined according to the feedback signal.
[0064] Further, in some optional embodiments, the processor of the atomization device is provided with at least two pins, as shown in FIG. 4, and step S10 of acquiring the feature information of the atomization device comprises:
[0065] Step S15, the atomization device is scanned by the reference signal, and the feedback signals received between different pins are sampled;
[0066] Step S16, the mapping relationship between different pins is determined according to the feedback signal, and the corresponding feature information is determined according to the mapping relationship; wherein the mapping relationship is configured to match the atomization device.
[0067] In this embodiment, the mapping relationship of the at least two pins of the processor of different atomization devices is different. For example, for the processor of a patch, it is assumed that it has eight pins, the working pin of the processor applied to the first atomization device is eight, the working pin of the processor applied to the second atomization device is six (the other two are bound to at least one of the six working pins), and the working pin of the processor applied to the third atomization device is five (the other three are bound to at least one of the five working pins). In application, the atomization device is scanned by the reference signal, the feedback signals received between different pins are sampled, the mapping relationship between different pins is determined according to the feedback signal, and the corresponding feature information is determined according to the mapping relationship.
[0068] Further, in some optional embodiments, the configuration information corresponds to at least one configuration item, and the configuration item comprises any one of a lamp effect configuration item, a power configuration item, a trigger function configuration item, a sensitivity configuration item, and a state display configuration item.
[0069] In the embodiment, each configuration item corresponds to a functional module of the atomization device. For example, the light effect configuration item corresponds to the light effect module of the atomization device, and the light effect configuration item includes parameters such as white light on, white light flashing three times, three-color light on, no light effect (blank), and the like. The power configuration item corresponds to the heating assembly of the atomization device, and the power configuration item includes parameters such as first power (low power), second power (medium power), third power (high power), and the like. The trigger function configuration item corresponds to the trigger button of the atomization device, and the trigger function configuration item includes parameters such as long press, short press, double press, and the like. The sensitivity configuration item corresponds to the airflow sensor of the atomization device, and the sensitivity configuration item includes parameters such as first starting threshold and second starting threshold. The state display configuration item corresponds to the display screen of the atomization device, and the state display configuration item includes parameters such as battery level, temperature, and number of puffs.
[0070] Further, in some optional embodiments, the step S20 includes: sequentially calling parameters of the corresponding configuration items in the configuration information according to the feature information, and the corresponding functional module is configured to respond according to the parameters of the configuration items. It can be understood that the parameters of the configuration items corresponding to different functions are sequentially called according to the feature information, and the corresponding functional module is configured to respond according to the parameters of the configuration items.
[0071] In the embodiment, the software of the atomization device is pre-divided into a plurality of independent software modules. For example, the complete atomization software can include software modules of standard functions such as boot detection, short circuit protection, low resistance protection, long puff protection, hibernation control, output control, and blowback protection. The software modules can also include software modules of personalized functions such as light effect, prompt, puffing action detection, output power, button function, and child lock corresponding to different configuration information.
[0072] It can be understood that the software of the atomization device is pre-divided into a plurality of independent software modules, and each software module is provided with corresponding configuration information. When the atomization device generates a puffing action or is activated, the controller calls the configuration information according to the feature information and drives the corresponding functional module according to the parameters of each configuration item in the called configuration information, and the corresponding functional module responds according to the configuration information and the puffing action.
[0073] By pre-dividing the software modules according to the software functions and pre-storing the configuration information suitable for different models of atomization devices in the same software module, the storage space can be reduced. It can be understood that at least two models of atomization devices in a plurality of different models of atomization devices have the same parameters in a certain configuration item. When the processor is adapted to the corresponding model of the atomization device, the processor only needs to call the same target parameter from the same storage area, avoiding the storage space redundancy caused by repeated storage of the same parameters.
[0074] Further, in some optional embodiments, the parameters of the configuration items are pre-combined into at least one operation mode. Step S20 comprises: matching the corresponding operation mode according to the feature information, and the corresponding function module responds according to the operation mode. In this embodiment, the parameters of the corresponding configuration items can be pre-combined into an operation mode according to each different atomization device. In application, the corresponding operation mode is directly called according to the feature information, and the function module of the atomization device responds according to the operation mode, so that the configuration and deployment of different atomization devices can be quickly realized.
[0075] Further, in some optional embodiments, as shown in FIG. 5, step S20 comprises:
[0076] Step S21, judging whether the puffing action occurs according to the preset starting threshold, if yes, executing step S22;
[0077] Step S22, calling the corresponding configuration information from the storage area according to the feature information, and the atomization device responds to the puffing action according to the configuration information.
[0078] In this embodiment, after the feature information of the atomization device is acquired after starting, the corresponding configuration information is not called from the storage area first, but whether the puffing action occurs is first judged according to the preset starting threshold. When it is judged that the puffing action occurs, the corresponding configuration information is called according to the feature information, and the puffing action is responded according to the configuration information. In this way, since the configuration information is directly applied after being called, the called configuration information does not need to be temporarily stored, and compared with the way that the configuration information is called first, the memory requirement of the processor is reduced.
[0079] Further, in some optional embodiments, the atomization device control method further comprises: judging whether the puffing action occurs according to the preset starting threshold; if it is judged that the puffing action occurs, the atomization device responds according to the frequency of the puffing action.
[0080] In this embodiment, when it is judged that the puffing action occurs, the frequency of the puffing action is further calculated, and the corresponding relationship between the frequency of the puffing action and the state of the atomization device is combined to respond. For example, if the frequency of the puffing action is detected to be 3 puffs in 2 seconds, and the current state of the atomization device is the locked state, the locked state is switched to the unlocked state; if 3 puffs in 2 seconds are detected, and the current state of the atomization device is the unlocked state, the unlocked state is switched to the locked state. It should be understood that in different atomization devices, the corresponding relationship between the frequency of the puffing action and the state of the atomization device can be the same or different, or the corresponding relationship between the frequency of the puffing action and the state of the atomization device is not configured.
[0081] Figure 6 is a flowchart of an embodiment of the atomizing device control method provided in this application. In this embodiment, an atomizing device manufacturer produces three different types of atomizing devices. The configuration information stored in the storage areas of the three types of atomizing devices is the same, that is, the same software information can be burned into the memory of the three types of atomizing devices. However, the hardware structures of the three types of atomizing devices are different, the corresponding feature information is different, and the corresponding operating modes are also different, and the operating modes are matched with the feature information. Different atomizing devices have different operating modes, and different operating modes include different configuration items or the same configuration item is preset to different specific parameters.
[0082] For example, the first atomizing device corresponds to the first operating mode M1, the second atomizing device corresponds to the second operating mode M2, and the third atomizing device corresponds to the third operating mode M3. In the first operating mode M1, the power configuration parameters are the first set power (high power) and the second set power (low power); the lighting effect configuration parameter is a white light smoking effect; the lock / unlock configuration parameter is empty. In the second operating mode M2, the power configuration parameter is the third set power (power under the second operating mode M2); the lighting effect configuration parameter is a white light smoking effect; the lock / unlock configuration parameter is a puffing frequency of 3 puffs within 2 seconds. In the third operating mode M3, the power configuration parameter is the fourth set power (power under the third operating mode M3); the lighting effect configuration parameter is a three-color light smoking effect; the lock / unlock configuration parameter is empty.
[0083] After powering on, the atomizing device acquires its own characteristic information through hardware scanning (e.g., PCB board scanning) and outputs a power-on lighting effect. It should be understood that different atomizing devices can have the same or different power-on lighting effects. If configured differently, before outputting the power-on lighting effect, the device first retrieves the parameters of the power-on lighting effect configuration item from the stored configuration information based on the characteristic information, and then outputs the power-on lighting effect according to the parameters of the retrieved configuration item. Therefore, this method allows testers to manually verify whether the retrieved configuration item is correct.
[0084] The system determines whether a suction action has occurred based on a preset startup threshold. If not, it enters a hibernation state. If so, it retrieves the specific parameters of the configuration items in the operating mode M based on the feature information.
[0085] For example, the corresponding heating components are driven to heat according to the parameters of the power configuration item of the corresponding operating mode.
[0086] If this atomizing device is in the first operating mode M1, and its power configuration parameters are a first set power (high power) and a second set power (low power), then it first determines whether it is in boost mode (high power mode); if so, the target power is set to high power; if not, the target power is set to low power. After setting the target power, the output power of the heating element can be adjusted according to the set target power.
[0087] If this atomizing device is in the second operating mode M2, its power configuration parameter is the third set power (the power of the second operating mode M2). Therefore, the target power is set to the power corresponding to the second operating mode M2, and the output power of the heating component is adjusted according to the set target power.
[0088] If this atomizing device is in the third operating mode M3, since its power configuration parameter is the fourth set power (the power of the third operating mode M3), the target power is set to the power corresponding to the third operating mode M3, and the output power of the heating component is adjusted according to the set target power.
[0089] The heating component of the atomizing device heats the aerosol forming matrix at the corresponding output power. During heating, the lighting effect module is also driven to respond according to the parameters of the lighting effect configuration item of the corresponding operating mode.
[0090] If the atomizing device is in the first operating mode M1 or the second operating mode M2, the parameter of its lighting effect configuration item is white light smoking effect. The lighting effect module of the atomizing device is driven to output white light smoking effect according to the parameter of the lighting effect configuration item.
[0091] If this atomizing device is in the third operating mode M3, its lighting effect configuration item parameter is a three-color light smoking effect. The lighting effect module of the atomizing device can be driven to output a three-color light smoking effect according to the parameter of this lighting effect configuration item.
[0092] When the smoking session is completed, for example, when the user inputs a power-off command, or when the total smoking time reaches the set time, or when the total number of puffs reaches the set number, the power output will stop and the lighting effect will be turned off.
[0093] After stopping power output and lighting effects, the atomizing device also responds according to the parameters of the lock / unlock configuration item of the corresponding operating mode.
[0094] If the atomizing device is in the first operating mode M1 or the third operating mode M3, since the lock / unlock configuration item parameter is empty, the atomizing device will enter sleep mode according to the parameter of the lock / unlock configuration item.
[0095] If this atomizing device is in the second operating mode M2, since its lock / unlock configuration parameter is a suction frequency of 3 suctions within 2 seconds, it further checks whether 3 suctions have been performed within 2 seconds. If not, it enters sleep mode; if so, it checks whether it is currently locked. If it is currently locked, it performs an unlocking action and flashes the light 3 times to indicate to the user that it is unlocked. If it is not currently locked, it performs a locking action and flashes the light 4 times to indicate to the user that it is unlocked. After flashing the lights, it enters sleep mode.
[0096] Please refer to Figure 7. The atomizing device provided in this embodiment includes a processor 101 and a memory 102 for storing computer programs. The processor 101 can be an MCU, such as an OTP type MCU. When the processor 101 executes the computer program, it implements the steps of the above atomizing device control method.
[0097] In the atomizing device of this embodiment, when the processor 101 executes the computer program, it obtains the feature information of the atomizing device. Since the configuration information of the atomizing device is related to the feature information, the corresponding configuration information is retrieved from the storage area according to the feature information, and the atomizing device runs according to the configuration information.
[0098] It should be noted that the above-mentioned atomizing device embodiments and method embodiments belong to the same concept. The specific implementation process can be found in the method embodiments. Furthermore, the technical features in the method embodiments are all applicable to the atomizing device embodiments, and will not be repeated here.
[0099] This application also provides a computer-readable storage medium, such as the memory 102 in Figure 7, which stores a computer program. When executed by a processor, the computer program implements the steps of the above-described atomization device control method. The computer-readable storage medium of this application can be any readable storage medium capable of storing program code, such as a USB flash drive, portable hard drive, read-only memory (ROM), magnetic disk, or optical disk.
[0100] In the computer-readable storage medium of this embodiment, when the computer program is executed by the processor, it obtains the feature information of the atomizing device. Since the configuration information of the atomizing device is related to the feature information, the corresponding configuration information is retrieved from the storage area according to the feature information, and the atomizing device operates according to the configuration information.
[0101] On the one hand, since the storage area of the atomizing device pre-stores the configuration information of multiple different atomizing devices, it can quickly adapt to the needs of different product lines, thereby meeting the needs of mass production and improving the versatility of components and production efficiency. On the other hand, when it is necessary to adjust the software function of the atomizing device, it is only necessary to call up the corresponding configuration information according to the feature information of the new atomizing device. Therefore, manufacturers can quickly and flexibly adjust the software function based on market demand and cost considerations, reducing the manufacturers' stagnant materials and management costs.
[0102] It should be noted that the above-described medium embodiments and method embodiments belong to the same concept. The specific implementation process can be found in the method embodiments, and the technical features in the method embodiments are also applicable to the medium embodiments, which will not be repeated here.
[0103] Through the above description of the embodiments, those skilled in the art can clearly understand that the methods of the above embodiments can be implemented by means of software plus necessary general-purpose hardware platforms. Of course, they can also be implemented by hardware, but in many cases the former is a better implementation method. Based on this, the technical solution of this application, in essence, or the part that contributes to the related technology, can be embodied in the form of a software product. This computer software product is stored in a storage medium (such as ROM / RAM, magnetic disk, optical disk) and includes several instructions to cause an atomizing device to execute the methods described in the various embodiments of this application.
Claims
1. A method of controlling an atomization device, characterized by, The method comprises: acquiring characteristic information of the atomization device; calling corresponding configuration information from a storage area according to the characteristic information, and the atomization device operating according to the configuration information; wherein the configuration information comprises at least one configuration item, and the configuration item comprises at least two parameters configured to correspond to different atomization devices.
2. The atomization device control method of claim 1, wherein The processor of the atomization device is provided with at least one pin, and the acquiring of the characteristic information of the atomization device comprises: sampling the voltage of the pin, determining the external resistance value of the pin according to the sampled voltage value; determining the corresponding characteristic information according to the external resistance value; wherein the external resistance value is configured to match the atomization device.
3. The atomization device control method of claim 1, wherein The processor of the atomization device is provided with at least one pin, and the acquiring of the characteristic information of the atomization device comprises: scanning the atomization device through a reference signal, and sampling the feedback signal received by the pin; determining the corresponding characteristic information according to the feedback signal; wherein the feedback signal is configured to match the atomization device.
4. The atomization device control method of claim 1, wherein The processor of the atomization device is provided with at least two pins, and the acquiring of the characteristic information of the atomization device comprises: scanning the atomization device through a reference signal, and sampling the feedback signal received between different pins; determining the mapping relationship between different pins according to the feedback signal, and determining the corresponding characteristic information according to the mapping relationship; wherein the mapping relationship is configured to match the atomization device.
5. The method of claim 1-4, wherein The configuration information corresponds to at least one configuration item, and the configuration item comprises any one of a light effect configuration item, a power configuration item, a trigger function configuration item, a sensitivity configuration item, and a state display configuration item.
6. The atomization device control method of claim 5, wherein, The calling of the corresponding configuration information from the storage area according to the characteristic information, and the operation of the atomization device according to the configuration information, comprises: sequentially calling the parameters of the corresponding configuration item in the configuration information according to the characteristic information, and the corresponding function module is configured to respond according to the parameters of the configuration item; or, the parameters of the configuration item are pre-combined into at least one operation mode, and the calling of the corresponding configuration information from the storage area according to the characteristic information, and the operation of the atomization device according to the configuration information, comprises: matching the corresponding operation mode according to the characteristic information, and the corresponding function module responds according to the operation mode.
7. The atomization device control method of claim 6, wherein, The calling of the corresponding configuration information from the storage area according to the characteristic information, and the operation of the atomization device according to the configuration information, comprises: determining whether the atomization device has a puffing action according to a preset starting threshold; if it is determined that the puffing action occurs, calling the corresponding configuration information from the storage area according to the characteristic information, and the atomization device responding to the puffing action according to the configuration information.
8. The method of claim 1-7, wherein, The control method further comprises: determining whether the atomization device has a puffing action according to a preset starting threshold; if it is determined that the puffing action occurs, the atomization device responding according to the frequency of the puffing action.
9. An atomization device comprising a processor and a memory for storing a computer program, characterized in that, The processor implements the steps of the atomization device control method of any one of claims 1-8 when executing the computer program.
10. A computer readable storage medium storing a computer program, characterized in that, The computer program, when executed by a processor, implements the steps of the control method of the atomization device according to any one of claims 1-8.
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