Electronic atomization device control method, electronic atomization device, and computer program product

By using multiple touch sensing controls in the electronic atomization device to detect signal changes and generate signal change sequences, and matching preset instructions to control the device status, the problem of cumbersome button-type operation is solved, and a convenient and efficient control method is achieved.

WO2025162005A1PCT designated stage Publication Date: 2025-08-07SHENZHEN MERIT TECH CO LTD
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Patent Information

Application Number
PCT/CN2025/073031
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-01-30
Filing Date
2025-01-17
Publication Date
2025-08-07

AI Technical Summary

Technical Problem

The button-type operation method of traditional electronic atomization devices is cumbersome and complex, and cannot meet the diverse and personalized user needs.

Method used

A plurality of touch sensing controls are used to detect the signal change information and trigger sequence of the touch sensing control, a signal change sequence is generated, and a preset command is matched to control the working state of the electronic atomization device.

Benefits of technology

It realizes convenient and efficient control of electronic atomization device, simplifies the operation process, and meets the diversity and personalized needs of users.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to an electronic atomization device control method, an electronic atomization device, and a computer program product. The method comprises: in response to a trigger operation for at least some touch sensing controls among a plurality of touch sensing controls, determining signal change information of the at least some touch sensing controls; on the basis of the trigger sequence and the signal change information of the at least some touch sensing controls, obtaining a signal change sequence corresponding to the trigger operation; finding an operation instruction corresponding to the signal change sequence; and changing the working state of the electronic atomization device on the basis of the operation instruction.
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Description

Electronic atomization device control method, electronic atomization device and computer program product

[0001] Related applications

[0002] This application claims priority to Chinese patent application number 2024101305918, filed on January 30, 2024, entitled “Electronic Atomization Device Control Method, Electronic Atomization Device and Computer Program Product,” the entire text of which is hereby incorporated by reference. Technical Field

[0003] The present application relates to the technical field of electronic atomization devices, and in particular to an electronic atomization device control method, an electronic atomization device, and a computer program product. Background Art

[0004] Electronic atomization devices have become a relatively mature product on the market. They use an atomizer to atomize an aerosol-generating matrix to produce an aerosol, allowing users to effectively absorb the active substances and ingredients in the aerosol-generating matrix. Typically, electronic atomization devices are equipped with a heating element. When a heated, non-combustible aerosol-generating matrix carrier is connected to and contacts the heating element, the heating element within the heating element heats the aerosol-generating matrix within the carrier.

[0005] With the continuous development and growth of electronic atomization devices and related industries, the use of electronic atomization devices has also raised the demand for diverse and personalized human-computer interaction methods. However, traditional technical solutions often use physical buttons, and the electronic atomization device can be controlled or set by pressing physical buttons according to relevant operating instructions. However, due to the diverse and personalized needs, the operation process of pressing buttons is more cumbersome and complicated. Summary of the Invention

[0006] Based on this, it is necessary to provide a convenient and efficient electronic atomization device control method, device, computer equipment, computer-readable storage medium and computer program product to address the above technical problems.

[0007] In a first aspect, the present application provides a method for controlling an electronic atomization device. Applied to an electronic atomization device comprising a plurality of touch-sensitive controls, the method comprises:

[0008] In response to a triggering operation on at least a portion of the touch-sensitive controls, determining signal change information of the at least a portion of the touch-sensitive controls;

[0009] Obtaining a signal change sequence corresponding to the triggering operation according to the triggering sequence of the at least part of the touch-sensitive controls and the signal change information;

[0010] Searching for an operation instruction corresponding to the signal change sequence;

[0011] The working state of the electronic atomization device is changed according to the operating instruction.

[0012] In one embodiment, each of the at least a portion of the touch-sensitive controls is used as a target touch-sensitive control, and an initial signal output by the target touch-sensitive control before being triggered and a response signal output when being triggered are obtained;

[0013] Signal change information corresponding to each target touch-sensitive control is determined according to the initial signal and the response signal.

[0014] In one embodiment, determining the signal change information corresponding to each target touch-sensitive control according to the initial signal and the response signal includes:

[0015] If the signal difference between the initial signal and the response signal is greater than or equal to a preset signal change threshold, signal change information corresponding to the target touch-sensitive control is determined according to the signal difference.

[0016] In one embodiment, determining the signal change information corresponding to the target touch-sensitive control according to the signal difference includes:

[0017] determining an adjacent touch-sensitive control that is triggered before the target touch-sensitive control;

[0018] determining a triggering interval duration between the target touch-sensing control and the adjacent touch-sensing control according to a signal change time corresponding to each touch-sensing control in the signal change information;

[0019] If the trigger interval is less than or equal to the preset interval, signal change information corresponding to the target touch-sensitive control is determined according to the signal difference.

[0020] In one embodiment, obtaining the signal change sequence corresponding to the triggering operation according to the triggering sequence of the at least part of the touch-sensitive controls and the signal change information includes:

[0021] According to the triggering sequence of the at least part of the touch-sensitive controls, control information corresponding to each touch-sensitive control in the at least part of the touch-sensitive controls is sorted to generate a signal change sequence corresponding to the triggering operation.

[0022] In one embodiment, searching for an operation instruction corresponding to the signal change sequence includes:

[0023] Matching the signal change sequence with a target change sequence corresponding to a preset instruction;

[0024] If the signal change sequence is identical to the target change sequence, the preset instruction corresponding to the target change sequence is determined as the operation instruction corresponding to the target change sequence.

[0025] In one embodiment, determining the preset instruction corresponding to the target change sequence as the operation instruction corresponding to the target change sequence includes:

[0026] Obtaining a target change duration corresponding to a target signal in the target change sequence;

[0027] If the duration of the signal change in the signal change sequence is the same as the target change duration, the preset instruction corresponding to the target change sequence is determined as the operation instruction corresponding to the target change sequence.

[0028] In one embodiment, the method for generating the target change sequence includes:

[0029] obtaining an initial signal sequence output by at least a portion of the touch-sensitive controls in response to the instruction setting action;

[0030] If the verification signal sequence output by at least a portion of the touch-sensitive controls in response to the instruction confirmation action is the same as the initial signal sequence, the initial signal sequence is determined as the target change sequence, and the functional instruction corresponding to the instruction setting action is determined as the preset instruction corresponding to the target change sequence.

[0031] In a second aspect, the present application also provides an electronic atomization device. The device comprises:

[0032] The gesture detection module is configured to determine signal change information of at least a portion of the touch-sensitive controls in response to a triggering operation on at least a portion of the touch-sensitive controls.

[0033] The signal processing module is used to obtain a signal change sequence corresponding to the triggering operation according to the triggering sequence and signal change information of at least a part of the touch-sensitive controls.

[0034] An instruction search module is used to search for operation instructions corresponding to the signal change sequence;

[0035] The action execution module is used to change the working state of the electronic atomization device according to the operation instruction.

[0036] In one embodiment, the gesture detection module is further configured to:

[0037] Taking each of the at least part of the touch-sensitive controls as a target touch-sensitive control, acquiring an initial signal output by the target touch-sensitive control before being triggered and a response signal output when being triggered;

[0038] Signal change information corresponding to each target touch-sensitive control is determined according to the initial signal and the response signal.

[0039] In one embodiment, the gesture detection module is further configured to:

[0040] If the signal difference between the initial signal and the response signal is greater than or equal to a preset signal change threshold, signal change information corresponding to the target touch-sensitive control is determined according to the signal difference.

[0041] In one embodiment, the gesture detection module is further configured to:

[0042] determining an adjacent touch-sensitive control that is triggered before the target touch-sensitive control;

[0043] determining a triggering interval duration between the target touch-sensing control and the adjacent touch-sensing control according to a signal change time corresponding to each touch-sensing control in the signal change information;

[0044] If the trigger interval is less than or equal to the preset interval, signal change information corresponding to the target touch-sensitive control is determined according to the signal difference.

[0045] In one embodiment, the signal processing module is further configured to:

[0046] According to the triggering sequence of the at least part of the touch-sensitive controls, control information corresponding to each touch-sensitive control in the at least part of the touch-sensitive controls is sorted to generate a signal change sequence corresponding to the triggering operation.

[0047] In one embodiment, the instruction search module is further configured to:

[0048] Matching the signal change sequence with a target change sequence corresponding to a preset instruction;

[0049] If the signal change sequence is identical to the target change sequence, the preset instruction corresponding to the target change sequence is determined as the operation instruction corresponding to the target change sequence.

[0050] In one embodiment, the instruction search module is further configured to:

[0051] Obtaining a target change duration corresponding to a target signal in the target change sequence;

[0052] If the duration of the signal change in the signal change sequence is the same as the target change duration, the preset instruction corresponding to the target change sequence is determined as the operation instruction corresponding to the target change sequence.

[0053] In one embodiment, the device further includes an instruction setting module for:

[0054] obtaining an initial signal sequence output by at least a portion of the touch-sensitive controls in response to the instruction setting action;

[0055] If the verification signal sequence output by at least a portion of the touch-sensitive controls in response to the instruction confirmation action is the same as the initial signal sequence, the initial signal sequence is determined as the target change sequence, and the functional instruction corresponding to the instruction setting action is determined as the preset instruction corresponding to the target change sequence.

[0056] In a third aspect, the present application further provides an electronic atomization device. The device includes a plurality of touch-sensitive controls and a processor, wherein the processor is configured to implement the following steps:

[0057] In response to a triggering operation on at least a portion of the touch-sensitive controls, determining signal change information of the at least a portion of the touch-sensitive controls;

[0058] Obtaining a signal change sequence corresponding to the triggering operation according to the triggering sequence of the at least part of the touch-sensitive controls and the signal change information;

[0059] Searching for an operation instruction corresponding to the signal change sequence;

[0060] The working state of the electronic atomization device is changed according to the operating instruction.

[0061] In a fourth aspect, the present application further provides a computer program product. The computer program product includes a computer program that, when executed by a processor, implements the following steps:

[0062] In response to a triggering operation on at least a portion of the touch-sensitive controls, determining signal change information of the at least a portion of the touch-sensitive controls;

[0063] Obtaining a signal change sequence corresponding to the triggering operation according to the triggering sequence of the at least part of the touch-sensitive controls and the signal change information;

[0064] Searching for an operation instruction corresponding to the signal change sequence;

[0065] The working state of the electronic atomization device is changed according to the operating instruction.

[0066] The details of one or more embodiments of the application are set forth in the accompanying drawings and the description below, and other features, objects, and advantages of the application will be apparent from the description, the drawings, and the claims. BRIEF DESCRIPTION OF THE DRAWINGS

[0067] In order to better describe and illustrate the embodiments and / or examples of the applications disclosed herein, reference may be made to one or more of the accompanying drawings. The additional details or examples used to describe the accompanying drawings should not be considered to limit the scope of the disclosed applications, the presently described embodiments and / or examples, and any of the best modes currently understood for these applications.

[0068] FIG1 is a diagram showing the internal structure of an electronic atomization device according to one embodiment;

[0069] FIG2 is a schematic flow chart of a method for controlling an electronic atomization device according to an embodiment;

[0070] FIG3 is a schematic diagram of a flow chart of sub-steps for generating signal change information in one embodiment;

[0071] FIG4 is a schematic diagram of a sub-step flow chart of determining the trigger interval duration of a control in one embodiment;

[0072] FIG5 is a schematic diagram of a sub-step flow chart of a matching search process in one embodiment;

[0073] FIG6 is a diagram showing the internal structure of a processor in an electronic atomization device according to an embodiment. DETAILED DESCRIPTION

[0074] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.

[0075] The electronic atomization device involved in the present application is used to heat the aerosol generating matrix to generate an aerosol for the user to use. The heating method can be convection, conduction, radiation or a combination thereof. The form of the aerosol generating matrix can be a liquid, gel, paste or solid, etc. When the aerosol generating matrix is ​​a solid, it can be a solid in the form of crushed, granulated, powdered, granular, strip or sheet. The aerosol generating matrix includes but is not limited to materials used for medical, health, health, and beauty purposes. For example, the aerosol generating matrix is ​​a medicinal liquid, oil, or the aerosol generating matrix is ​​a plant material, such as the roots, stems, leaves, flowers, buds, seeds, etc. of a plant. That is, the embodiments of the present application do not limit the heating method, form, and use of the aerosol generating matrix.

[0076] As pointed out in the above-mentioned traditional technical solutions, the button-type or press-type control method adopted by the traditional technical solutions in the electronic atomization device has a relatively cumbersome and complicated operation process. Therefore, in order to solve this technical problem, the embodiment of the present application provides an electronic atomization device control method, which can be applied to the electronic atomization device as shown in Figure 1. Among them, the outer surface of the electronic atomization device is provided with an interactive operation area, and the interactive operation area is composed of a plurality of touch-sensitive controls 102; the touch-sensitive control 102 can output a corresponding signal to the processor 104 inside the electronic atomization device before responding to the trigger operation; in addition, in the process of operating the electronic atomization device, the operator's finger touches the touch-sensitive control 102, which will cause the signal output by it to change. Therefore, the processor 104, as the main control unit, can determine the touch-sensitive control 102 touched by the operator's current trigger operation based on the change in the received signal.

[0077] Based on the working principle of the device described in Figure 1, during the use of the electronic atomization device in the embodiment of the present application, multiple touch-sensitive controls 102 can detect and respond to the operator's trigger operation in real time (to the processor 104). During the trigger operation, when the finger contacts the touch-sensitive control 102, the finger contacts the multiple touch-sensitive controls 102 in sequence, causing the corresponding touch-sensitive control 102 output value signal processor 104 to change. Therefore, the part of the touch-sensitive control 104 that contacts the finger can generate signal change information in response to the trigger operation. During the trigger operation, a number of touch-sensitive controls 102 may be contacted. Therefore, according to the trigger sequence of the touch-sensitive controls 102, multiple signal change information will be generated and sent to the processor 104. Further, the processor 104 forms a signal change sequence corresponding to the current trigger operation based on the multiple signal change information received and the aforementioned determined trigger sequence. Based on this signal change sequence and the signal change sequence corresponding to the (function) operation instruction pre-written in the processor 104, matching and screening are performed to determine the operation instruction corresponding to the current signal change sequence. According to the correspondence between the trigger operation and the signal change sequence, the operation instruction corresponding to the trigger operation can be determined, and the processor 104 changes or adjusts the current working state of the electronic atomization device in response to the operation instruction.

[0078] In one embodiment, as shown in FIG2 , a method for controlling an electronic atomization device is provided. Taking the method applied to the electronic atomization device in FIG1 as an example, the control method is described, including the following steps:

[0079] Step 202 : In response to a triggering operation on at least a portion of the touch-sensitive controls, determine signal change information of at least a portion of the touch-sensitive controls.

[0080] In the embodiment, the touch-sensing control is a control for realizing human-computer interaction, which includes but is not limited to specific implementation methods such as touch points, touch panels and touch areas. The touch-sensing control in the embodiment is a medium for realizing interaction between the operator and the electronic atomization device, which can detect the position and movement of the operator's finger or touch tool (for example, a stylus) on the touch-sensing control, thereby causing the touch-sensing control to generate a corresponding signal or signal change. The triggering operation in the embodiment is a human-computer interaction method, which controls the electronic atomization device through triggering operations such as sliding and touching. Specifically, the triggering operation methods in the embodiment include but are not limited to finger touching, sliding, pinching, rotating and other actions. The signal change information in the embodiment is formed by the changes caused by the output signal of the touch-sensing control, wherein the output signal of the touch-sensing control includes but is not limited to voltage signals, level signals or current signals, etc. Taking the level signal as an example, the signal change information generated by the touch control includes but is not limited to changes in the level state or the generation of signal pulses.

[0081] In addition, in the embodiment, the device may be provided with multiple touch-sensing controls, and in the trigger operation, signal change information can be formed by only touching some of the touch-sensing controls; for example, the electronic atomization device is provided with four touch-sensing controls ABCD; and in the trigger operation in the embodiment, only the three touch-sensing controls ABD are touched.

[0082] For example, the operator needs to start the electronic atomization device to heat the aerosol generating matrix, and select the touch point as the touch sensing control; the trigger operation is formed by sliding the finger in the interactive area formed by the touch points on the surface of the electronic atomization device. There are four touch points ABCD in the interactive area of ​​the electronic atomization device, and the three touch points ABC that the finger slides through during the trigger operation. Since the capacitance or resistance of the three touch points ABC changes after the three touch points ABC are in contact with the finger, the signal output before and after the finger touches changes. For example, the contact of the finger with the touch point will cause a pulse signal to be formed in the control circuit of the touch point, so the generation of the pulse signal forms the signal change information corresponding to the touch point. Furthermore, based on the order of the touch points that the finger slides through during the trigger operation, the signal change information generated by the corresponding touch point will also be sent to the processor in the electronic atomization device in the aforementioned order, and the processor will perform subsequent processing.

[0083] Step 204 : Obtain a signal change sequence corresponding to the triggering operation according to the triggering sequence and signal change information of at least a portion of the touch-sensitive controls.

[0084] In the embodiments, the triggering order is used to represent the order in which a finger contacts a touch-sensitive control during a triggering operation. Furthermore, the signal change sequence in the embodiments is a sequence formed by arranging the signal changes (information) generated by multiple touch-sensitive controls according to the triggering order during the triggering operation.

[0085] Exemplarily, after receiving all signal change information generated in the current trigger operation, the processor in the electronic atomization device in the embodiment sorts the source of each signal change information, that is, the touch-sensing control that generates the signal change, according to the signal change occurrence time or timestamp recorded in each signal change information, thereby forming a control trigger sequence that can reflect the order of contact with each touch point in the trigger operation.

[0086] Step 206: Search for an operation instruction corresponding to the signal change sequence.

[0087] In an embodiment, an operation instruction is a functional instruction to be executed by the electronic atomization device; wherein the functional instruction can be based on pre-set instruction content written into the processor, such as specific instruction content such as starting device heating, stopping heating, opening and closing the child lock, etc. More specifically, in an embodiment, the process of searching and determining the operation instruction corresponding to the trigger operation can be based on matching and screening the signal change sequence corresponding to the trigger operation or performing rule analysis to determine it.

[0088] Exemplarily, after the processor generates the signal change sequence corresponding to the current trigger operation, it will match and filter the trigger modes corresponding to the various functional instructions pre-written in the processor with the current signal change sequence. Taking the touch point as a touch-sensing control as an example, the trigger mode in the embodiment refers to the touch point corresponding to the functional instruction and the combination mode of the touch points, wherein the combination mode is mainly determined by the triggering sequence of the touch points. When the touch points and the triggering sequence of the touch points contained in the current signal change sequence are consistent, the functional instruction corresponding to the signal change sequence is determined, and the operation instruction corresponding to the triggering operation is further determined based on the correspondence between the signal change sequence and the triggering operation.

[0089] For example, the processor in the electronic atomization device sorts the touch points that generate the pulse signals according to the time information or timestamp of each pulse signal received, and the resulting signal change sequence is A→B→C→D→C→B→A. The processor matches and filters this signal change sequence with the triggering sequence of the touch points corresponding to each pre-written functional instruction, and based on the matching and filtering results, determines that among the pre-written functional instructions, the instruction corresponding to the triggering sequence of A→B→C→D→C→B→A is an instruction to start device heating. Therefore, the processor confirms that the instruction corresponding to the current trigger operation is an instruction to heat the device.

[0090] Step 206 , changing the working state of the electronic atomization device according to the operating instruction.

[0091] In the embodiments, the operating state refers to the current state of the electronic atomization device, for example, the operating state of the aerosol-generating substrate being heated at a specific temperature. In the embodiments, the process of changing the operating state of the device is that the processor responds to the operation instructions formed by the aforementioned steps, triggers corresponding control information or generates corresponding instruction parameters, and sends values ​​to the relevant functional modules in the device, thereby changing the operating state of each functional module, thereby changing and adjusting the operating state of the entire device.

[0092] For example, the electronic atomization device in the embodiment determines that the operation instruction corresponding to the current trigger operation is a device heating instruction based on the recognition of the signal change sequence and the matching screening of the instructions. In addition, before the processor responds to the device heating instruction, the electronic atomization device is in a standby state. After the processor recognizes and determines the device heating instruction, it triggers the start signal of the heating component according to the instruction and sends the start signal to the heating component in the electronic atomization device. After receiving the start signal, the heating component will be powered on and start heating.

[0093] In the above-mentioned method for controlling an electronic atomization device, the touch-sensing control can generate a signal change in response to a trigger operation, and since the trigger operation will pass through the touch-sensing control in sequence, the touch-sensing control will generate a signal change in sequence. Based on the signal change information generated by the touch-sensing control, the generation order of the signal change information corresponding to each touch-sensing control is determined, and a corresponding signal change sequence is formed; further, the operation instruction corresponding to the trigger operation is determined according to the signal change sequence, thereby adjusting and changing the working state of the electronic atomization device. Through the flexible combination and sorting of touch-sensing controls, a variety of signal change sequences can be formed; and then, according to the correspondence between the signal change sequence and the operation instruction, a variety of operation instructions can be recorded to meet the needs of diversity and personalization; in addition, the simple trigger operation can omit the operation guidance of the button pressing operation mode, and the operation mode is more direct, convenient and efficient.

[0094] In one embodiment, as shown in FIG3 , the process of determining the signal change information of at least a portion of the touch-sensitive controls in the above method may include the following steps:

[0095] Step 302 : Taking each of at least a portion of the touch-sensitive controls as a target touch-sensitive control, obtaining an initial signal output by the target touch-sensitive control before being triggered and a response signal output when being triggered.

[0096] In the embodiment, the target touch-sensing control represents each touch-sensing control touched by the operator's finger during the triggering operation. The initial signal in the embodiment refers to the signal output to the device processor before the touch-sensing control is triggered. The state of the target touch-sensing control before being triggered may refer to the rest state or the unresponsive state of the touch-sensing control; therefore, the initial signal may also refer to the signal output by the touch-sensing control in the rest state or the unresponsive state. Correspondingly, the response signal in the embodiment refers to the process of the triggering operation in which the operator's finger touches the touch-sensing control, causing the electrical component parameters in the control circuit inside the touch-sensing control to change, thereby causing the electrical signal output by the control circuit to change; therefore, the output electrical signal after the change is the response signal output in response to the triggering operation.

[0097] Exemplarily, the touch sensing control of the electronic atomization device in the embodiment can be implemented in a touch point manner, and the touch point control is composed of a touch-type electrode sheet and an electronic touch-type integrated circuit (IC). The electrode sheet and the electronic touch-type IC form a control loop. In a scenario where the operator controls the electronic atomization device by a sliding trigger operation, when the operator's finger slides and contacts the electrode sheet of a touch point, the capacitance value or resistance value in the touch point control loop changes, causing the output voltage of the control loop to change accordingly. For example, before contact is made with the finger, the output voltage of the control loop of the touch point, that is, the initial signal transmitted to the processor is a high-level signal; and during the trigger operation, the resistance value in the control loop changes due to contact with the finger, which in turn causes the output voltage of the control loop to decrease, and the electrical signal of the transmission value processor, that is, the response signal, is converted to a low-level signal.

[0098] Step 304 : Determine signal change information corresponding to each target touch-sensitive control according to the initial signal and the response signal.

[0099] In an embodiment, the signal change information is formed by comparing and analyzing the initial signal and the response signal. The comparison and analysis process may be performed by difference calculation or ratio analysis.

[0100] For example, the processor in the electronic atomization device in the embodiment can be implemented using a microcontroller unit (MCU). The MCU in the device can receive the electrical signals sent by each touch sensing control in real time, and perform analysis and calculation processing on the electrical signals. For example, before responding to the trigger operation, the electronic atomization device is in a standby state; in the standby state, the control circuit of the touch sensing control in the device will output a corresponding level signal to the MCU, and the MCU records the high level state corresponding to each touch sensing control in the standby state as the initial signal. Then, when the operator performs a trigger operation, the resistance value in the control circuit changes due to the contact between the touch sensing control and the operator's finger, so that the signal state of the touch sensing control output value MCU is a low level state, and the MCU also records the response signal corresponding to the response state as the response signal. Further, the MCU calculates the difference between the voltage value of the initial signal and the voltage value of the response signal, and uses the voltage difference between the two as signal change information. That is to say, on the MCU side, when signal change information of a touch-sensing control is detected, the touch-sensing control touched by the current trigger operation can be determined, and the touch-sensing control touched during the trigger operation can be accurately identified.

[0101] In order to more accurately identify the touch-sensitive controls contacted during a triggering operation and the order in which the controls are triggered, in one embodiment, the process of determining the signal change information corresponding to each target touch-sensitive control based on the initial signal and the response signal in the above method can be specifically the following steps:

[0102] If the signal difference between the initial signal and the response signal is greater than or equal to a preset signal change threshold, signal change information corresponding to the target touch-sensitive control is determined according to the signal difference.

[0103] In an embodiment, the signal difference is determined based on the voltage or current difference between the initial signal and the response signal. Furthermore, the level signal difference can be obtained by performing a subtraction operation on the MCU. In an embodiment, the signal change threshold can refer to a decision condition pre-programmed into the device processor, which determines whether the level signal difference indicates a signal change caused by a finger operation.

[0104] Since there may be accidental touches or contact with other objects in the use scenario of the electronic atomization device, in order to avoid misoperation or false triggering of the touch-sensitive control, in the embodiment, a signal change threshold can be pre-set as a trigger judgment basis.

[0105] For example, in the embodiment, when the electronic atomizer device is in standby mode, the initial signal transmitted to the MCU by each touch-sensing control in the device has a voltage value of 2.4V. However, due to the contact between the touch-sensing control and the finger, the resistance value in the control circuit changes, causing the signal state of the touch-sensing control output value MCU to be low, that is, the corresponding response signal of the touch-sensing control is 0.8V. Therefore, in this embodiment, the MCU calculates the signal difference of 1.6V based on the voltage values ​​corresponding to the initial signal and the response signal.

[0106] More specifically, in the embodiment, a signal change threshold can be written in advance into the MCU of the electronic atomization device, and the threshold can be set to 1.2V. That is to say, only when the level signal difference is greater than 1.2V, the MCU will determine that the change in the current level signal is caused by a trigger operation. For example, in the embodiment, the MCU determines by calculation that the level signal difference between the initial signal and the response signal of a touch-sensitive control is 1.0V; the level signal difference is less than the signal change threshold of 1.2V set in the MCU; then the MCU determines that this level signal difference is due to a triggering of other objects or a level signal change caused by an accidental touch, and the MCU will ignore this level signal difference and the level signal change. For another example, the level signal difference between the initial signal and the response signal of a touch-sensitive control is 1.5V, which is greater than the signal change threshold of 1.2V. The MCU determines that this level signal difference is a level signal change caused by a trigger operation, and will retain and cache the level signal difference, and form corresponding signal change information based on this level signal difference to trigger subsequent actions. By setting a signal change threshold, the embodiment can more accurately identify and judge the trigger operation, effectively avoid false touches, and improve the safety of the electronic atomization device.

[0107] In order to more accurately identify the touch-sensitive controls contacted during a triggering operation and the control triggering order, as shown in FIG4 , in one embodiment, the above method for determining the signal change information corresponding to the target touch-sensitive control based on the signal difference may include the following steps:

[0108] Step 402: Determine adjacent touch-sensitive controls that are triggered before the target touch-sensitive control.

[0109] In an embodiment, the adjacent touch-sensitive control is a touch-sensitive control that is triggered due to contact with a finger before the target touch-sensitive control in the triggering operation process after the target touch-sensitive control in the triggering operation process is determined.

[0110] For example, when a trigger operation is formed by sliding a finger, the trigger operation will contact multiple touch-sensing controls. There must be a certain time interval between sliding from the previous touch-sensing control to the current touch-sensing control, and this time interval can be used to judge the integrity of the trigger operation, avoiding the MCU being in a high-power state of operation all the time, resulting in power loss and performance loss. To this end, when the MCU in the embodiment receives the response signal output by each touch-sensing control, it will also determine the trigger time of the response signal based on the clock circuit in the MCU. When the trigger operation slides to the next touch-sensing control, the control information of the previous touch-sensing control and the time when the output signal of the control changes are recorded and cached.

[0111] Step 404 : Determine the triggering interval between the target touch-sensitive control and the adjacent touch-sensitive controls according to the signal change time corresponding to each touch-sensitive control in the signal change information.

[0112] In this embodiment, the signal change time is used to describe the time it takes for each touch-sensitive control to cause its output signal to change in response to a trigger operation. Furthermore, the trigger interval duration is determined by the difference between the signal change times corresponding to the target touch-sensitive control and the adjacent touch-sensitive control, after determining the signal change times corresponding to the two. Specifically, in this embodiment, the processor can use a clock circuit to mark the time when the signal changes.

[0113] For example, after the MCU in the electronic atomization device of the embodiment detects the response signal triggered by the current touch-sensing control, it determines according to the signal change threshold provided in the aforementioned embodiment that the response signal is a signal triggered by the current touch-sensing control in response to the triggering operation. Furthermore, the MCU will judge the interval time between the response signals to determine whether the current trigger-sensing control and the adjacent triggered touch-sensing control belong to the same triggering operation and are used to describe the same operation instruction. Specifically, the MCU calls the trigger time of the response signal of the previous touch-sensing control temporarily stored in the cache space, and calculates the difference between the time when the current touch-sensing control triggers the response signal, and performs subsequent judgment and analysis processing based on the difference between the trigger times of the two signals, that is, the trigger interval duration.

[0114] Step 406: If the trigger interval is less than or equal to the preset interval, determine the signal change information corresponding to the target touch-sensitive control according to the signal difference.

[0115] In this embodiment, the preset interval duration refers to a maximum preset trigger interval duration. If the trigger interval duration between two adjacently triggered touch-sensitive controls is less than or equal to the preset interval duration, then the two response signals can be determined to be associated with the same trigger operation. In other words, during this trigger operation, the operator's finger slid across the two touch-sensitive controls in succession.

[0116] For example, in one embodiment, the preset interval duration for triggering the electronic atomization device can also be set to 2 seconds by pre-writing it into the MCU. For example, in one embodiment, after determining that the response signal of the current touch-sensitive control was triggered by a triggering operation through the signal change threshold judgment step, the MCU records the signal change time of the current signal change information and the target touch-sensitive control that generated the signal change information through a clock circuit. In addition, the MCU also retrieves the adjacent touch-sensitive control that was triggered before the target touch-sensitive control from the local cache space and obtains the signal change time corresponding to this adjacent touch-sensitive control. The MCU determines that the trigger interval duration is 1 second by calculating the time difference. Therefore, the MCU can determine that the adjacent touch-sensitive control that was triggered before the target touch-sensitive control belongs to the control contacted in the same triggering operation and can determine the triggering order of the signal based on the response time. Furthermore, due to the one-to-one correspondence between the signal change information and the touch-sensitive control, the MCU can determine the touch-sensitive control contacted by the finger sliding during the triggering operation, as well as the order of the contacted touch-sensitive controls. In the embodiment, by introducing the trigger interval duration, the touch-sensitive controls contacted during the trigger operation and the touching order of the touch-sensitive controls can be more accurately identified, and a reliable basis for identifying and determining the functional instructions can be provided.

[0117] In one embodiment, the process of obtaining the signal change sequence corresponding to the triggering operation based on the triggering sequence and signal change information of at least a portion of the touch-sensitive controls in the above method may specifically include the following steps:

[0118] According to the triggering sequence of at least a portion of the touch-sensitive controls, control information corresponding to each touch-sensitive control in at least a portion of the touch-sensitive controls is sorted to generate a signal change sequence corresponding to the triggering operation.

[0119] In an embodiment, the trigger sequence refers to the order in which the operator's fingers sequentially contact the touch-sensitive controls during a trigger operation.

[0120] For example, in this embodiment, a signal change threshold is first used to determine whether the level signal difference corresponding to the current touch-sensitive control is due to a trigger operation. Furthermore, a predetermined interval is used to determine that the trigger operation touched two touch-sensitive controls before the current touch-sensitive control was touched. The first two touch-sensitive controls are designated A and B. The time at which control A and control B generate signal change information is recorded in the MCU cache, and the control is sorted in chronological order. The trigger operation is determined to be from A to B, recorded as A→B. If the level signal difference is determined to be greater than or equal to the signal change threshold, the MCU uses the time at which the response signal corresponding to the current touch-sensitive control C is received as the time at which control C generates the response signal difference. Based on this time, it can be determined that the trigger operation occurred after touching control B and then touching control C. Therefore, in this embodiment, the signal change sequence obtained by sorting the triggering of each control based on the time at which the touch-sensitive controls generate level signal differences is A→B→C. Then, the MCU in the embodiment can identify and judge the current signal change sequence based on the signal change sequence formed in the above steps and the instruction rules pre-written in the MCU, or the target change sequence of the pre-written functional instructions, and finally determine the operation instruction corresponding to the signal change sequence.

[0121] In one embodiment, as shown in FIG5 , the process of determining the operation instruction corresponding to the trigger operation according to the signal change sequence in the above method may include the following steps:

[0122] Step 501: Match the signal change sequence with the target change sequence corresponding to the preset instruction.

[0123] Step 502: If the signal change sequence is identical to the target change sequence, the preset instruction corresponding to the target change sequence is determined as the operation instruction corresponding to the target change sequence.

[0124] In an embodiment, the preset instructions are pre-written into the processor of the electronic atomization device, and correspond to the instructions for the functions that the electronic atomization device can implement. Furthermore, in the embodiment, when writing the preset instructions into the processor, the trigger mode corresponding to each preset instruction can also be set. The trigger mode stipulates the order in which the various touch-sensitive controls are touched during the triggering operation when the preset instruction is triggered. This order is the target change sequence corresponding to the preset instruction. It should be noted that in some embodiments, the target change sequence corresponding to the preset instruction can be modified in a custom setting method.

[0125] For example, in the embodiment, a plurality of preset instructions are written in advance into the MCU of the electronic atomization device and a target change sequence (touch sensing control) corresponding to the preset instructions is set. For example, the preset instructions and target change sequence written include: start heating: A→B→C→D; stop heating / standby: D→C→B→A; turn on the child lock: B→C→D→A; turn off the child lock: A→D→C→B. During the use of the electronic atomization device, through the judgment and identification method described in the aforementioned embodiment, the MCU determines that the signal change sequence corresponding to the current trigger operation is D→C→B→A; then the MCU compares the signal change sequence with the plurality of preset target change sequences one by one, and can determine that this signal change sequence is the same as the target change sequence for stopping heating / standby, and then, the MCU can determine that the operation instruction triggered by the current trigger operation is to stop heating or enter standby state. By comparing with the target change sequence corresponding to the preset instruction, the embodiment can more clearly and accurately describe the functional instruction corresponding to each trigger operation, and can more flexibly implement the issuance of operation instructions.

[0126] For another example, in the embodiment, the operation instruction corresponding to the signal change sequence is identified and judged by the judgment method of the instruction rule; wherein, the instruction rule stipulates that the trigger operation from control A to control B is to start the device and heat it; and the next control touched after control B determines the heating temperature: control A is 10°C; control C is 25°C; control D is 45°C. Then when the signal change sequence is A→B→C, the MCU determines that the operation instruction corresponding to the sequence is to start the electronic atomization device and heat it at a temperature of 25°C according to the aforementioned instruction rule. Furthermore, according to the correspondence between the signal change sequence and the trigger operation, it can be determined that the finger sliding through the trigger operation of the touch-sensitive control in sequence according to A→B→C can start the electronic atomization device and heat the aerosol generating matrix at a temperature of 25°C. The embodiment determines the signal change sequence in the order of signal change information, and can form a unique mapping relationship between the trigger operation and the operation instruction. Through this mapping relationship, the operation instruction can be accurately identified.

[0127] In one embodiment, the process of determining the preset instruction corresponding to the target change sequence as the operation instruction corresponding to the target change sequence in the above method may include the following steps:

[0128] Step 1: Obtain the target change duration corresponding to the target signal in the target change sequence.

[0129] In the embodiment, the target change sequence corresponding to each preset instruction must include more than one target touch-sensitive control, and the signal change information generated by each target touch-sensitive control after contact with the finger is the target signal. Furthermore, in the embodiment, the target change duration is used to describe the duration of the signal change generated by the target touch-sensitive control in the target change sequence corresponding to the preset instruction. For example, in the embodiment, the stop heating / standby instruction pre-written into the MCU has a corresponding target change sequence of: D→C→B→A; and, in the target change sequence, the signal change corresponding to the control D is further set to maintain a maintenance time of 2 seconds, that is, during the triggering operation, the finger needs to maintain contact with the control D for 2 seconds.

[0130] Step 2: If the duration of the signal change in the signal change sequence is the same as the target change duration, the preset instruction corresponding to the target change sequence is determined as the operation instruction corresponding to the trigger operation.

[0131] For example, the MCU in this embodiment generates the signal change sequence corresponding to the current trigger operation as D→C→B→A through the steps of the aforementioned embodiment. Furthermore, during the signal change sequence generation process, the MCU also performs more precise detection and analysis of the signal change information corresponding to each touch-sensitive control. Specifically, the MCU identifies the output signal waveform corresponding to each touch-sensitive control and determines the corresponding signal change information based on the changes in the high and low levels in the output signal waveform. The MCU records the moments of the high and low level changes to determine the duration of the signal response; it also records the duration of the high and low level changes to determine the signal change. For example, in the sequence D→C→B→A, the signal changes of controls D, C, B, and A last for 2 seconds, 1 second, 1 second, and 2 seconds, respectively. When programming the stop heating / standby command in the MCU, the target change sequence is first set to D→C→B→A. The target change duration of the signal change output by the starting control in the sequence, control D, is then set to 2 seconds. After comparing and determining the sequence, the MCU further needs to accurately determine the duration of the signal change. By comparing the durations, it can be determined that the signal change durations of control D in the two sequences are the same. Therefore, the MCU can determine that the operation instruction corresponding to the current signal change sequence is the stop heating / standby instruction; that is, the operation instruction corresponding to the current trigger operation is the stop heating / standby instruction. In this embodiment, the signal change duration is incorporated into the instruction matching and screening, which not only makes the instruction recognition and judgment results more accurate, but also increases the flexibility and diversity of instruction settings.

[0132] In one embodiment, the method for generating the target change sequence in the above method may include the following steps:

[0133] Step 1: obtaining an initial signal sequence output by at least a portion of the touch-sensitive controls in response to an instruction setting action.

[0134] Step 2: If the verification signal sequence output by at least a portion of the touch-sensitive controls in response to the instruction confirmation action is the same as the initial signal sequence, the initial signal sequence is determined as the target change sequence, and the functional instruction corresponding to the instruction setting action is determined as the preset instruction corresponding to the target change sequence.

[0135] In an embodiment, the instruction setting action is a triggering operation formed by the finger sequentially contacting the touch-sensitive control when writing a preset instruction; the instruction confirmation action refers to a triggering operation formed by the finger sequentially contacting the touch-sensitive control when confirming the execution of the written preset. The initial signal sequence in the embodiment is used to describe the sequence of signal changes corresponding to the touch-sensitive control that the finger slides over during the triggering operation during the initial setting. The verification signal sequence in the embodiment is the sequence of signal changes corresponding to the touch-sensitive control that the finger slides over during the triggering operation during the confirmation stage of the initial signal sequence. In the embodiment, only when the verification signal sequence is the same as the initial signal sequence can the initial signal sequence be determined as the target change sequence determined by the preset instruction.

[0136] Exemplarily, the setting instruction content in the embodiment is: the operator touches the touch-sensitive controls A and D with his fingers at the same time, and maintains the contact time for 5 seconds. After receiving this setting instruction, the MCU in the electronic atomization device enters the configuration state of the device, that is, the data writing state of the MCU. The functional instruction content for setting can be selected through the visual interactive interface in the device, such as checking the power, starting heating, stopping heating, entering the child lock, releasing the child lock, etc. After selecting the functional instruction (such as checking the power), by triggering the touch-sensitive control of the sliding touch device, the MCU records the order in which the fingers slide over the touch keys according to the order of high and low levels output by the detected touch keys and records it as the initial signal sequence, and then the aforementioned triggering operation needs to be reproduced to complete the confirmation, and the touch-sensitive control of the sliding touch device needs to be triggered again, and the MCU records the order in which the fingers slide over the touch keys according to the order of high and low levels output by the detected touch keys and records it as the verification signal sequence. The MCU compares the initial signal sequence with the verification signal sequence. If the two sliding gestures have the same sequential path, the MCU prompts the user to complete the setup through a visual interactive interface. If the two sliding gestures are different, the MCU prompts the user to reset the setup until the two sliding gestures have the same sequential path. In this embodiment, the verification signal sequence is compared with the initial signal sequence to improve the accuracy of the command customization process.

[0137] More specifically, the complete implementation process of the electronic atomization device control method provided in this application is described. In this embodiment, the electronic atomization device is equipped with four touch buttons ABCD, which are arranged in a straight line with equal spacing. The corresponding electronic atomization device control method of the device includes the following steps:

[0138] Step 1: When the device is in standby mode, each touch button will output a high level or a low level to the MCU.

[0139] Step 2: For a single touch button, when the finger is not touching it, a high level is output to the MCU. When the finger touches the touch button (without pressing it), or when the finger slides on the body and touches the touch button, the touch button will output a low level to the MCU.

[0140] Step 3: When a finger slides across a row of touch buttons, it will touch the touch buttons in turn and change the level state of the touch button output. After the MCU receives the high and low level signals output by the touch buttons, it will record the order in which the high and low levels of the touch buttons are output.

[0141] Step 4: According to the mapping relationship between the sequence of high and low level signals output by the multiple touch keys and the functions set in the MCU software, when it is detected that the sequence of high and low level signals output by the touch keys is the same as that set by the software, the corresponding function is executed.

[0142] Step 5: Slide on multiple touch buttons and use your fingers to perform different gestures to trigger different functions. The user's interactive experience is just like operating on a mobile phone touch screen. In this way, multiple touch buttons with a lower cost than a touch screen can be used to simulate the same experience as sliding fingers on a touch screen.

[0143] Step 6: The electronic atomizer can be connected to an application (APP) via Bluetooth. Through the APP, users can customize the electronic atomizer function corresponding to the sliding gesture:

[0144] 1) Select the function for which you want to customize the gesture, such as checking the battery level, starting heating, stopping heating, entering child lock, and removing child lock.

[0145] 2) Set a sliding gesture and slide on multiple touch buttons. The MCU records the order in which the finger slides over the touch buttons based on the order in which the detected touch buttons output high and low levels.

[0146] 3) Repeat step 2) to confirm. If the two swipe gestures are exactly the same, the setting is complete. If the two swipe gestures are different, the setting fails and you need to reset it again until the two swipe gestures are exactly the same.

[0147] It should be understood that, although the steps in the flowcharts of the above embodiments are shown in sequence as indicated by the arrows, these steps are not necessarily performed in the order indicated by the arrows. Unless otherwise specified herein, there is no strict order restriction on the execution of these steps, and these steps can be performed in other orders. Moreover, at least a portion of the steps in the flowcharts of the above embodiments may include multiple steps or multiple stages, and these steps or stages are not necessarily performed at the same time, but can be performed at different times. The execution order of these steps or stages is not necessarily to be performed in sequence, but can be performed in turn or alternately with other steps or at least a portion of steps or stages in other steps.

[0148] Based on the same inventive concept, the present application also provides an electronic atomization device for implementing the electronic atomization device control method mentioned above. The solution provided by this device is similar to the solution described in the above method. Therefore, the specific limitations of one or more electronic atomization device embodiments provided below can be found in the above limitations of the electronic atomization device control method and will not be repeated here.

[0149] In one embodiment, as shown in FIG6 , an electronic atomization device 600 is provided, comprising: a gesture detection module 601 , a signal processing module 602 , an instruction search module 603 , and an action execution module 604 , wherein:

[0150] The gesture detection module 601 is configured to determine signal change information of at least a portion of the touch-sensitive controls in response to a triggering operation on at least a portion of the touch-sensitive controls.

[0151] The signal processing module 602 is configured to obtain a signal change sequence corresponding to the triggering operation according to the triggering sequence and signal change information of at least a portion of the touch-sensitive controls.

[0152] An instruction search module 603 is used to search for an operation instruction corresponding to a signal change sequence;

[0153] The action execution module 604 is used to change the working state of the electronic atomization device according to the operation instruction.

[0154] In one embodiment, the gesture detection module 601 is also used to take each of at least a portion of the touch-sensing controls as a target touch-sensing control, obtain the initial signal output by the target touch-sensing control before being triggered and the response signal output when being triggered; and determine the signal change information corresponding to each target touch-sensing control based on the initial signal and the response signal.

[0155] In one embodiment, the gesture detection module 601 is further configured to determine the signal change information corresponding to the target touch-sensitive control according to the signal difference if the signal difference between the initial signal and the response signal is greater than or equal to a preset signal change threshold.

[0156] In one embodiment, the gesture detection module 601 is also used to determine the adjacent touch-sensing controls that are triggered before the target touch-sensing control; determine the triggering interval duration between the target touch-sensing control and the adjacent touch-sensing controls based on the signal change time corresponding to each touch-sensing control in the signal change information; if the triggering interval duration is less than or equal to the preset interval duration, determine the signal change information corresponding to the target touch-sensing control based on the signal difference.

[0157] In one embodiment, the signal processing module 602 is further configured to sort the control information corresponding to each touch-sensitive control in at least a portion of the touch-sensitive controls according to the triggering order of at least a portion of the touch-sensitive controls, and generate a signal change sequence corresponding to the triggering operation.

[0158] In one embodiment, the instruction search module 603 is further used to match the signal change sequence with the target change sequence corresponding to the preset instruction; if the signal change sequence is the same as the target change sequence, the preset instruction corresponding to the target change sequence is determined as the operation instruction corresponding to the target change sequence.

[0159] In one embodiment, the instruction search module 603 is also used to obtain the target change duration corresponding to the target signal in the target change sequence; if the duration of the signal change in the signal change sequence is the same as the target change duration, the preset instruction corresponding to the target change sequence is determined as the operation instruction corresponding to the target change sequence.

[0160] In one embodiment, the device 600 also includes an instruction setting module, which is used to obtain an initial signal sequence output by at least a portion of the touch-sensing controls in response to an instruction setting action; if the verification signal sequence output by at least a portion of the touch-sensing controls in response to an instruction confirmation action is the same as the initial signal sequence, the initial signal sequence is determined as the target change sequence, and the functional instruction corresponding to the instruction setting action is determined as the preset instruction corresponding to the target change sequence.

[0161] Each module in the above-mentioned electronic atomization device can be implemented in whole or in part through software, hardware, or a combination thereof. Each of the above-mentioned modules can be embedded in or independent of the processor in the computer device in hardware form, or can be stored in the memory of the computer device in software form, so that the processor can call and execute the corresponding operations of each of the above modules.

[0162] In one embodiment, an electronic atomization device is provided, including a memory and a processor. The memory stores a computer program, and when the processor executes the computer program, the following steps are implemented:

[0163] In response to a triggering operation on at least a part of the touch sensing controls among a plurality of touch sensing controls, signal change information of at least a part of the touch sensing controls is determined; a signal change sequence corresponding to the triggering operation is obtained based on the triggering order and signal change information of at least a part of the touch sensing controls; an operation instruction corresponding to the signal change sequence is searched; and the working state of the electronic atomization device is changed according to the operation instruction.

[0164] In one embodiment, a computer-readable storage medium is provided, on which a computer program is stored. When the computer program is executed by a processor, the following steps are implemented:

[0165] In response to a triggering operation on at least a part of the touch sensing controls among a plurality of touch sensing controls, signal change information of at least a part of the touch sensing controls is determined; a signal change sequence corresponding to the triggering operation is obtained based on the triggering order and signal change information of at least a part of the touch sensing controls; an operation instruction corresponding to the signal change sequence is searched; and the working state of the electronic atomization device is changed according to the operation instruction.

[0166] In one embodiment, a computer program product is provided, comprising a computer program, which, when executed by a processor, implements the following steps:

[0167] In response to a triggering operation on at least a part of the touch sensing controls among a plurality of touch sensing controls, signal change information of at least a part of the touch sensing controls is determined; a signal change sequence corresponding to the triggering operation is obtained based on the triggering order and signal change information of at least a part of the touch sensing controls; an operation instruction corresponding to the signal change sequence is searched; and the working state of the electronic atomization device is changed according to the operation instruction.

[0168] The technical features of the above-mentioned embodiments can be combined arbitrarily. In order to make the description concise, not all possible combinations of the technical features in the above-mentioned embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0169] The above-described embodiments merely represent several implementation methods of the present application. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that a person of ordinary skill in the art may make various modifications and improvements without departing from the spirit of the present application, and these modifications and improvements fall within the scope of protection of the present application. Therefore, the scope of protection of the present patent application shall be determined by the appended claims.

Claims

1. A method for controlling an electronic atomization device, characterized in that: Applied to an electronic atomization device, the electronic atomization device includes a plurality of touch-sensitive controls, and the method includes: In response to a triggering operation on at least a portion of the touch-sensitive controls, determining signal change information of the at least a portion of the touch-sensitive controls; Obtaining a signal change sequence corresponding to the triggering operation according to the triggering sequence of the at least part of the touch-sensitive controls and the signal change information; Searching for an operation instruction corresponding to the signal change sequence; The working state of the electronic atomization device is changed according to the operating instruction.

2. The method according to claim 1, characterized in that The determining the signal change information of the at least part of the touch sensing controls includes: Taking each of the at least part of the touch-sensitive controls as a target touch-sensitive control, acquiring an initial signal output by the target touch-sensitive control before being triggered and a response signal output when being triggered; Signal change information corresponding to each target touch-sensitive control is determined according to the initial signal and the response signal.

3. The method according to claim 2, characterized in that The determining, according to the initial signal and the response signal, signal change information corresponding to each target touch-sensitive control includes: If the signal difference between the initial signal and the response signal is greater than or equal to a preset signal change threshold, signal change information corresponding to the target touch-sensitive control is determined according to the signal difference.

4. The method according to claim 3, characterized in that The determining, according to the signal difference, signal change information corresponding to the target touch-sensing control includes: determining an adjacent touch-sensitive control that is triggered before the target touch-sensitive control; determining a triggering interval duration between the target touch-sensing control and the adjacent touch-sensing control according to a signal change time corresponding to each touch-sensing control in the signal change information; If the trigger interval is less than or equal to the preset interval, signal change information corresponding to the target touch-sensitive control is determined according to the signal difference.

5. The method according to claim 1, wherein The obtaining, according to the triggering sequence of the at least part of the touch-sensitive controls and the signal change information, a signal change sequence corresponding to the triggering operation includes: According to the triggering sequence of the at least part of the touch-sensitive controls, control information corresponding to each touch-sensitive control in the at least part of the touch-sensitive controls is sorted to generate a signal change sequence corresponding to the triggering operation.

6. The method according to claim 1, characterized in that The searching for the operation instruction corresponding to the signal change sequence includes: Matching the signal change sequence with a target change sequence corresponding to a preset instruction; If the signal change sequence is identical to the target change sequence, the preset instruction corresponding to the target change sequence is determined as the operation instruction corresponding to the target change sequence.

7. The method according to claim 6, characterized in that The step of determining the preset instruction corresponding to the target change sequence as the operation instruction corresponding to the target change sequence includes: Obtaining a target change duration corresponding to a target signal in the target change sequence; If the duration of the signal change in the signal change sequence is the same as the target change duration, the preset instruction corresponding to the target change sequence is determined as the operation instruction corresponding to the target change sequence.

8. The method according to claim 6, characterized in that The method for generating the target change sequence includes: obtaining an initial signal sequence output by at least a portion of the touch-sensitive controls in response to the instruction setting action; If the verification signal sequence output by at least a portion of the touch-sensitive controls in response to the instruction confirmation action is the same as the initial signal sequence, the initial signal sequence is determined as the target change sequence, and the functional instruction corresponding to the instruction setting action is determined as the preset instruction corresponding to the target change sequence.

9. An electronic atomization device, characterized in that: The device comprises: a gesture detection module, configured to determine signal change information of at least a portion of the touch-sensitive controls in response to a triggering operation on at least a portion of the touch-sensitive controls; A signal processing module, configured to obtain a signal change sequence corresponding to the triggering operation based on the triggering sequence and signal change information of at least a portion of the touch-sensitive controls; An instruction search module is used to search for operation instructions corresponding to the signal change sequence; The action execution module is used to change the working state of the electronic atomization device according to the operation instruction.

10. The device according to claim 9, characterized in that The gesture detection module is further configured to: Taking each of the at least part of the touch-sensitive controls as a target touch-sensitive control, acquiring an initial signal output by the target touch-sensitive control before being triggered and a response signal output when being triggered; Signal change information corresponding to each target touch-sensitive control is determined according to the initial signal and the response signal.

11. The device according to claim 10, characterized in that The gesture detection module is further configured to: If the signal difference between the initial signal and the response signal is greater than or equal to a preset signal change threshold, signal change information corresponding to the target touch-sensitive control is determined according to the signal difference.

12. The device according to claim 11, characterized in that The gesture detection module is further configured to: determining an adjacent touch-sensitive control that is triggered before the target touch-sensitive control; determining a triggering interval duration between the target touch-sensing control and the adjacent touch-sensing control according to a signal change time corresponding to each touch-sensing control in the signal change information; If the trigger interval is less than or equal to the preset interval, signal change information corresponding to the target touch-sensitive control is determined according to the signal difference.

13. The device according to claim 9, characterized in that The signal processing module is further configured to: According to the triggering sequence of the at least part of the touch-sensitive controls, control information corresponding to each touch-sensitive control in the at least part of the touch-sensitive controls is sorted to generate a signal change sequence corresponding to the triggering operation.

14. The device according to claim 9, characterized in that The instruction search module is also used for: Matching the signal change sequence with a target change sequence corresponding to a preset instruction; If the signal change sequence is identical to the target change sequence, the preset instruction corresponding to the target change sequence is determined as the operation instruction corresponding to the target change sequence.

15. The device according to claim 14, characterized in that The instruction search module is also used for: Obtaining a target change duration corresponding to a target signal in the target change sequence; If the duration of the signal change in the signal change sequence is the same as the target change duration, the preset instruction corresponding to the target change sequence is determined as the operation instruction corresponding to the target change sequence.

16. The device according to claim 14, characterized in that The device further includes an instruction setting module, configured to: obtaining an initial signal sequence output by at least a portion of the touch-sensitive controls in response to the instruction setting action; If the verification signal sequence output by at least a portion of the touch-sensitive controls in response to the instruction confirmation action is the same as the initial signal sequence, the initial signal sequence is determined as the target change sequence, and the functional instruction corresponding to the instruction setting action is determined as the preset instruction corresponding to the target change sequence.

17. An electronic atomization device, characterized in that: The apparatus comprises a plurality of touch-sensitive controls and a processor, wherein the processor is configured to execute the steps of the method according to any one of claims 1 to 8.

18. A computer program product comprising a computer program, characterized in that When the computer program is executed by a processor, the steps of the method according to any one of claims 1 to 8 are implemented.

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