Control method and control device of molding equipment and related equipment

By automatically matching the target parameter set of the modeling equipment with the one-click modeling mode, the problem of manually setting different modeling accessories is solved, and efficient and safe modeling operation is achieved.

CN121578690APending Publication Date: 2026-02-27DREAME TECH (SHANGHAI) CO LTD
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Patent Information

Application Number
CN202511526487.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-23
Publication Date
2026-02-27

AI Technical Summary

Technical Problem

Different styling accessories have different physical forms, materials and functions, which means that users need to manually set their parameter groups in a complicated way. This is complicated, inefficient and can easily affect the styling effect.

Method used

By responding to the one-click styling mode, the styling equipment automatically receives accessory installation information and matches the target parameter group, which includes control parameters and execution time for multiple styling actions, simplifying the user's manual setting process and ensuring automatic configuration and adaptation of the parameter group.

Benefits of technology

The parameter setting process has been simplified, operational efficiency has been improved, problems with poor styling effects caused by improper parameter settings have been reduced, and user experience and device security have been enhanced.

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Patent Text Reader

Abstract

The embodiment of the invention discloses a control method and control device of modeling equipment and related equipment, and the main technical scheme comprises the steps of receiving accessory installation information of the modeling equipment in response to an event of triggering a one-key modeling mode when the control method and control device of the modeling equipment are applied to the modeling equipment; obtaining a target parameter group corresponding to the accessory installation information, wherein the target parameter group comprises control parameters corresponding to a plurality of modeling actions executed in sequence and execution duration; controlling the modeling equipment to execute a plurality of modeling actions in sequence according to the target parameter group; according to the method and the device, the parameter group of the modeling equipment can be automatically configured, so that the operation process is simplified, and the user experience is improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of modeling equipment, in particular to a control method and control device of modeling equipment and related equipment. BACKGROUND

[0002] Currently, modeling equipment can be equipped with various replaceable modeling accessories to achieve different modeling functions. However, different modeling accessories have significant differences in the required parameter groups due to their physical form, material and action mode, resulting in the user needing to manually set the parameter groups of different modeling accessories, which is not only complicated and inefficient, but also seriously affects the modeling effect of the modeling equipment when the parameter settings are improper, reducing the user's experience. SUMMARY

[0003] The present application provides a control method and control device of modeling equipment and related equipment to automatically configure the parameter groups of the modeling equipment, thereby simplifying the operation process and improving the user experience.

[0004] According to a first aspect, a control method of modeling equipment is provided, applied to the modeling equipment, and the method comprises: In response to an event triggering a one-key modeling mode, receiving accessory installation information of the modeling equipment; Obtaining a target parameter group corresponding to the accessory installation information, the target parameter group comprising control parameters corresponding to multiple modeling actions performed in sequence and execution time lengths; Controlling the modeling equipment to perform the multiple modeling actions in sequence according to the target parameter group.

[0005] As an optional way, the obtaining of the target parameter group corresponding to the accessory installation information comprises: In response to receiving a target parameter group corresponding to the accessory installation information from a control device, storing the target parameter group corresponding to the accessory installation information in the modeling equipment; or In response to the modeling equipment not establishing a communication connection with the control device, obtaining a target parameter group corresponding to the accessory installation information stored in the modeling equipment.

[0006] As an optional way, the storing of the target parameter group corresponding to the accessory installation information in the modeling equipment in response to receiving the target parameter group corresponding to the accessory installation information from the control device comprises: In response to receiving a target parameter set corresponding to the accessory installation information from the control device, if the styling device has not yet stored a target parameter set corresponding to the accessory installation information, then the target parameter set corresponding to the accessory installation information is stored in the styling device. If the styling device stores a target parameter group corresponding to the accessory installation information, and the received target parameter group is a non-temporary parameter group, then the target parameter group stored by the styling device corresponding to the accessory installation information is replaced with the received target parameter group. If the molding device stores a target parameter group corresponding to the accessory installation information, and the received target parameter group is a temporary parameter group, then the temporary parameter group is executed directly. If the target parameter group stored in the modeling device exceeds the corresponding valid duration, the target parameter group is deleted.

[0007] As an optional approach, the method further includes: During the process of the styling device performing the multiple styling actions, second adjustment information of the target parameter group by the user through the styling device is obtained; The second adjustment information is sent to a control device that is communicatively connected to the modeling device.

[0008] According to a second aspect, a control method for a molding device is provided, applied to a control device communicatively connected to the molding device, the method comprising: Obtain the accessory installation information of the modeling equipment; Obtain at least one parameter group corresponding to the accessory installation information, and display the at least one parameter group through the user interface of the control device. The parameter group includes control parameters and execution durations corresponding to multiple styling actions executed in sequence. A target parameter group is identified from the at least one parameter group, and the target parameter group is sent to the modeling device so that the modeling device performs multiple modeling actions in sequence based on the target parameter group.

[0009] As an optional approach, identifying the target parameter set from the at least one parameter set includes: Based on the first adjustment information input by the user for the at least one parameter group, a temporary parameter group is obtained, and the temporary parameter group is used as the target parameter group; or... In response to a user's selection operation, the parameter group selected by the user from the at least one parameter group is taken as the target parameter group. The at least one parameter group includes a system-recommended parameter group and / or a self-configured parameter group, which is obtained based on the user's save operation on the temporary parameter group.

[0010] As an optional approach, the method further includes: Based on the user's save operation or default configuration information for the temporary parameter group, the effective duration corresponding to the self-configured parameter group is determined; If the effective duration corresponding to the self-configurable parameter group is reached, a parameter expiration notification is displayed on the user interface. In response to the user's extension operation input for the parameter expiration notification, the effective duration corresponding to the self-configurable parameter group is extended. If the effective duration corresponding to the self-configured parameter group is exceeded, then the self-configured parameter group is deleted.

[0011] As an optional approach, the method further includes: During the process of the styling device performing the multiple styling actions, the user obtains second adjustment information of the target parameter group through the styling device. Based on the second adjustment information, a temporary parameter group is obtained and displayed on the user interface.

[0012] As an optional approach, the system recommends the parameter set by the following steps: Obtain the image of the shape input by the user in the user interface; Feature recognition is performed on the image before styling to obtain the head features before styling; Based on the aforementioned head features, determine the system's recommended parameter set; or, Based on the adjustment information input by the user regarding the front head features of the hairstyle, the adjusted front head features are obtained. Based on the adjusted front head features, a system-recommended parameter set is determined; or... The system obtains the expected shape image input by the user, obtains the target shape information based on the expected shape image, and determines the system's recommended parameter group based on the target shape information.

[0013] As an optional approach, the method further includes: During the process of the modeling device sequentially executing multiple modeling actions based on the target parameter set, the state parameter information of the modeling device is obtained; Based on the status parameter information, a warning or prompt message is generated and displayed on the user interface.

[0014] According to a third aspect, a control device for a molding device is provided, disposed in the molding device, the device comprising: The information acquisition module is configured to receive accessory installation information of the styling device in response to an event that triggers the one-click styling mode; The parameter acquisition module is configured to acquire a target parameter set corresponding to the accessory installation information. The target parameter set includes control parameters and execution durations corresponding to multiple styling actions executed in sequence. The styling control module is configured to control the styling device to execute the plurality of styling actions in sequence according to the target parameter set.

[0015] According to a fourth aspect, a control device for a modeling device is provided, disposed in the control device, the control device being communicatively connected to the modeling device, the device comprising: The accessory determination module is configured to obtain accessory installation information of the modeling equipment; The parameter display module acquires at least one parameter group corresponding to the accessory installation information and displays the at least one parameter group through the user interface of the control device. The parameter group includes control parameters and execution time corresponding to multiple styling actions executed in sequence. The parameter determination module is configured to identify a target parameter group from the at least one parameter group and send the target parameter group to the modeling device so that the modeling device performs multiple modeling actions in sequence based on the target parameter group.

[0016] According to the fifth aspect, a modeling device is provided, comprising: One or more processors; and A memory associated with the one or more processors, the memory being used to store program instructions that, when read and executed by the one or more processors, perform the steps of the method described in any one of the first aspects.

[0017] According to a sixth aspect, a control device is provided, comprising: One or more processors; and A memory associated with the one or more processors, the memory being used to store program instructions that, when read and executed by the one or more processors, perform the steps of the method described in any one of the second aspects.

[0018] According to a seventh aspect, a computer program product is provided, comprising a computer program that, when executed by a processor, implements the steps of the method described in any one of the first aspects, or the steps of the method described in any one of the second aspects.

[0019] According to the specific embodiments provided in this application, the following technical effects are disclosed: The solution provided in this application automatically receives accessory installation information from the styling device and matches the corresponding target parameter group by responding to the trigger event of the one-click styling mode. The target parameter group can include control parameters and execution durations for multiple styling actions executed in sequence. Therefore, users do not need to perform tedious manual parameter settings for different styling accessories. The styling device can be controlled to execute the corresponding styling actions in sequence, which can effectively simplify the parameter setting process and improve operational efficiency. At the same time, by automatically matching the parameter group that is compatible with the styling accessories, the problem of poor styling effect caused by improper parameter settings can be reduced, thereby effectively improving the user experience.

[0020] Of course, any product implementing this application does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description

[0021] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0022] Figure 1 The system architecture diagram of the control method for the modeling equipment provided in the embodiments of this application is applied to the modeling equipment.

[0023] Figure 2 The flowchart illustrates the control method for the modeling equipment provided in this application, applied to the modeling equipment.

[0024] Figure 3 The system architecture diagram of the control method for the modeling equipment provided in the embodiments of this application is applied to the control equipment.

[0025] Figure 4 The flowchart illustrates the application of the control method for the modeling equipment provided in this application to the control equipment.

[0026] Figure 5 The control method for the modeling equipment provided in this application is applied to another system architecture diagram of the control equipment.

[0027] Figure 6 A schematic diagram of a control device module installed on a modeling device according to an embodiment of this application.

[0028] Figure 7 This is a schematic diagram of a control device module provided in a control device according to an embodiment of this application.

[0029] Figure 8 A schematic block diagram of a modeling device or control device provided in an embodiment of this application. Detailed Implementation

[0030] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of this application are within the scope of protection of this application.

[0031] The terminology used in the embodiments of this invention is for the purpose of describing particular embodiments only and is not intended to limit the invention. The singular forms “a,” “the,” and “the” as used in the embodiments of this invention and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise.

[0032] It should be understood that the term "and / or" used in this article is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A existing alone, A and B existing simultaneously, and B existing alone. Additionally, the character " / " in this article generally indicates that the preceding and following related objects have an "or" relationship.

[0033] Depending on the context, the word "if" as used here can be interpreted as "when," "when," "in response to determination," or "in response to detection." Similarly, depending on the context, the phrase "if determination" or "if detection (of the stated condition or event)" can be interpreted as "when determination," "in response to determination," "when detection (of the stated condition or event)," or "in response to detection (of the stated condition or event)."

[0034] Currently, modeling equipment can be equipped with a variety of replaceable modeling accessories to achieve different modeling functions. However, due to differences in physical shape, material, and mode of operation, different modeling accessories require significantly different parameter sets. This forces users to manually set the usage parameter sets for different modeling accessories in a tedious process. This process is not only complicated and inefficient, but improper parameter settings can also seriously affect the modeling effect of the modeling equipment and reduce the user experience.

[0035] To address the aforementioned issues, this application provides a control method, control device, and related equipment for a modeling device, which automatically configures the parameter set of the modeling device, thereby simplifying the operation process and improving the user experience.

[0036] The present application will be further described below with reference to the accompanying drawings.

[0037] refer to Figure 1 , Figure 1The control method for the styling device provided in this application embodiment is applied to the system architecture diagram of the styling device. Under this architecture, after the user triggers the one-click styling mode of the styling device (step ①), the styling device can obtain its own accessory installation information (step ②). Subsequently, the styling device can obtain a target parameter set corresponding to the accessory installation information (step ③), and execute multiple styling actions sequentially based on this target parameter set (step ④) to complete the styling process for the user. Through the above system architecture and process, users do not need to manually and tediously set the parameters of different styling accessories, thus simplifying the user's operation process.

[0038] refer to Figure 2 , Figure 2 The flowchart illustrates the control method for a modeling device provided in this application, applied to a modeling device. In some embodiments, this application provides a control method for a modeling device, applied to... Figure 1 The modeling equipment and method shown include, but are not limited to, the following steps: Step 201: In response to the event that triggers the one-click styling mode, receive accessory installation information from the styling device; Step 202: Obtain the target parameter set corresponding to the accessory installation information. The target parameter set includes the control parameters and execution time corresponding to multiple styling actions executed in sequence. Step 203: Control the modeling equipment to execute multiple modeling actions in sequence according to the target parameter set.

[0039] Based on steps 201 to 203 above, the solution provided in this application embodiment can automatically receive accessory installation information of the styling device and match the corresponding target parameter group by responding to the trigger event of the one-click styling mode. This target parameter group can include control parameters and execution durations for multiple styling actions executed sequentially. Therefore, users do not need to perform tedious manual parameter settings for different styling accessories; the styling device can be controlled to execute corresponding styling actions sequentially, effectively simplifying the parameter setting process and improving operational efficiency. Simultaneously, by automatically matching the parameter group adapted to the styling accessories, the problem of poor styling results caused by improper parameter settings can be reduced. Since manually set parameters may be inaccurate or unsuitable for the current accessory, it can easily lead to poor styling results, hair damage, or unrepeatable results. This invention ensures that the device always operates under the optimal parameters most suitable for the current accessory by automatically associating accessory installation information with the optimized target parameter group. This not only effectively improves the quality and stability of the final styling effect but also reduces potential damage to the hair by avoiding improper parameter settings (such as excessively high temperatures), thus improving the safety and reliability of the device.

[0040] One-click modeling mode is a mode that quickly triggers and executes a series of modeling actions. This can be achieved by triggering physical function keys on the modeling device, or by triggering components on the touch interface of the control device that has established a communication connection with the modeling device. For example, it can be achieved by pushing up a function key on the modeling device, short-pressing a combination key on the modeling device, or using voice commands. This automates and automates the operation process, significantly improving human-computer interaction efficiency. This solution integrates multiple discrete manual operation steps into an automated intelligent process through a closed-loop control logic of "one-click triggering - automatic recognition - parameter matching - sequential execution." This fundamentally simplifies user operation, reduces reliance on user expertise, and allows ordinary users to easily complete complex models, greatly improving the ease of use and operational efficiency of the equipment.

[0041] The accessory installation information can be the current assembly status of the styling accessories on the styling equipment, which can be identified through sensors or corresponding interfaces to determine the styling accessories installed on the styling equipment. The styling accessories installed on the styling equipment can have only a single styling function, such as a blower function; or they can have a combination of multiple styling functions, such as curling, heating, and blow-drying functions.

[0042] In this embodiment, the parameter group can be a pre-established parameter sequence. Each parameter in the parameter sequence can be associated with the execution time of a specific styling step to ensure the timing accuracy of multiple styling actions. For example, the parameter group "(70℃ heating, 15 seconds) - (setting, 10 seconds) - (25℃ cold air, 10 seconds)" is used to realize the one-click curling function.

[0043] Understandably, when the styling device detects the trigger signal of the one-click styling mode, it can identify the installation information of the currently installed styling accessories through sensors. Then, it retrieves the target parameter group that matches the installation information of the accessory from the storage unit to achieve automated configuration of the parameter group. It is conceivable that traditional solutions require users to set the working parameters one by one after changing accessories. However, this method effectively simplifies the operation steps when using multiple accessories in combination by establishing a mapping relationship between accessory installation information and target parameter groups. It avoids styling failures caused by human error in setting parameters, thereby reducing the user's learning cost, improving the user experience, and enabling non-professionals to easily complete complex hairstyle designs.

[0044] Compared to the design that "constantly receives accessory installation information", this application can activate the styling device to obtain information only when the one-click styling mode is triggered, and the styling device can go into sleep mode at other times, reducing unnecessary energy consumption, extending the usage time of the styling device on a single charge, and only obtaining the current accessory information when styling is triggered, which can reduce the amount of invalid data processing and improve data processing efficiency.

[0045] It is worth noting that the target parameter group mentioned in the embodiments of this application is associated with the recommended hairstyle selected by the user, and the accessory parameters used in each recommended hairstyle may be different; for example, both straight hair and curly hair use anti-flip accessories, but the target parameters of the anti-flip accessories corresponding to the two hairstyles are different. This is because the system's recommended parameter group is dynamically generated based on the target styling information (such as selecting the "straight hair" or "curly hair" recommendation option) input by the user through the user interface of the control device. The parameter group includes control parameters such as temperature, wind speed, and execution time, and is optimized for different hairstyle needs to ensure that the accessory parameters are accurately matched with the hairstyle, thereby improving the personalization and consistency of the styling effect.

[0046] In some embodiments, this application further proposes a specific method for obtaining a target parameter set corresponding to accessory installation information, including two scenarios: in response to receiving a target parameter set corresponding to accessory installation information from a control device, storing the target parameter set corresponding to the accessory installation information in a styling device; or, in response to the styling device not establishing a communication connection with the control device, obtaining the target parameter set corresponding to accessory installation information stored in the styling device.

[0047] The control device can be an external terminal capable of data interaction with the modeling equipment. Specifically, it can be a smartphone or tablet that uses a communication protocol to achieve two-way communication, transmitting parameter configuration information to the modeling equipment. Alternatively, it can be connected via a network, with communication between the modeling equipment and the control device achieved through message or command forwarding from a server.

[0048] The target parameter set can include control parameters such as temperature, wind speed, and actuation angle, as well as their operation duration. It can be stored locally using non-volatile memory to ensure data integrity after power failure. The temporary parameter set can contain user-modified parameter configurations that are automatically cleared upon completion of the current modeling operation.

[0049] Understandably, when the modeling equipment remains connected to the control equipment, newly received parameter sets are categorized and stored according to their type. Parameter sets are mainly divided into non-temporary parameter sets and temporary parameter sets. The specific storage logic is as follows: If the modeling equipment has not yet stored the parameter set corresponding to the current part, the newly received parameter set is directly saved to the local memory as the default configuration for that part; if a historical parameter set already exists, and the newly received parameter set is a non-temporary parameter set, an overwrite update operation is performed, replacing the old parameter set with the new one; if the newly received parameter set is a temporary parameter set, there is no need for persistent storage, and the parameter set can be executed directly. Conversely, when the modeling equipment is offline, the system directly calls the locally pre-stored parameter sets to execute the modeling process. At the same time, for all parameter sets stored in the modeling equipment, the system monitors their validity period through a timer. Once the corresponding validity period is exceeded, the parameter set will be automatically deleted to maintain the validity of the parameters and the efficiency of storage space.

[0050] In some embodiments, this application further proposes that, in response to receiving a target parameter group corresponding to accessory installation information from a control device, if the styling device has not yet stored a target parameter group corresponding to the accessory installation information, the target parameter group corresponding to the accessory installation information is stored in the styling device; if the styling device has stored a target parameter group corresponding to the accessory installation information, and the received target parameter group is a non-temporary parameter group, the received target parameter group replaces the target parameter group corresponding to the accessory installation information stored in the styling device; if the styling device has stored a target parameter group corresponding to the accessory installation information, and the received target parameter group is a temporary parameter group, the temporary parameter group is executed directly; wherein, if the target parameter group stored in the styling device exceeds the corresponding valid duration, the target parameter group is deleted.

[0051] The target parameter group can be stored in JSON or XML format and transmitted through the communication protocol between the control device and the modeling device. It is used to guide the modeling device to perform modeling actions in a preset order. The temporary parameter group is only effective in a single use case. The effective duration can be a time threshold that the parameter group can be stored for. It can be calculated using a timer module in conjunction with the system clock. When the storage time exceeds the effective duration, a deletion operation is triggered.

[0052] In some embodiments, the accessory installation information of the styling device in this application embodiment can be identified and stored instantly when the accessory is installed on the main body through physical mechanisms such as Hall magnet sensing, RFID or contact sensing; this means that when the user triggers a one-click styling mode (e.g., one-click curling mode), the styling device can directly receive and use the stored accessory installation information without having to wait for the identification process after the event is triggered, thereby improving the response speed and user experience.

[0053] In some embodiments, the receiving of accessory installation information of the styling device in this application embodiment can also be achieved through different coordination mechanisms with the control device. For example, after the one-click styling mode event is triggered, the styling device can directly call the pre-stored accessory information without manual intervention; or, when the one-click styling mode event is triggered, the control device can display multiple styling accessories for the user to select from on the user interface. After the user manually confirms the accessory installation information of the styling device, the control device will send the accessory installation information to the styling device so that the styling device can receive the accessory installation information; or, the styling device can always be in the information receiving state so as to receive the accessory installation information sent by the control device at any time.

[0054] It is understandable that when the modeling equipment receives the target parameter set sent by the control equipment, there are three main situations: the target parameter set is the system recommended parameter set, the self-configured parameter set, and the temporary parameter set. Among them, the system-recommended parameter group is a non-temporary type. It is an adaptive parameter group generated by the control device based on the hair texture, hair volume, head shape and other head features identified by the user-uploaded pre-styling image, combined with the user's input target styling information. Its parameter configuration fits the user's hair condition and styling needs. The self-configured parameter group is also a non-temporary type. It is a personalized configuration generated after the user performs a save operation on the temporary parameter group. When the styling device receives this type of parameter group, it can simultaneously record the validity period of the user's settings or defaults. If there is no corresponding accessory parameter group locally, it will be stored. If there is, the old configuration will be overwritten. The validity period will be continuously monitored in subsequent use, and it will be automatically cleared after expiration. The temporary parameter group is a temporary adjustment configuration that the user has not performed a save operation. It is a non-saveable type and only takes effect once. When the styling device receives this type of parameter group, it does not need to check whether the corresponding accessory parameter group is stored locally. It can directly execute the current parameters. After the execution is completed, the temporary parameter group will automatically expire. The next time the one-click styling mode is triggered, the system-recommended parameter group or the self-configured parameter group stored locally will still be loaded.

[0055] In summary, the styling device can first check if the target parameter group corresponding to the installation information of the same accessory is already stored locally. If not, the newly received parameter group is stored directly; if it is already stored and the new parameter group is not temporary, the existing parameter group is overwritten to keep the parameters updated; if the new parameter group is temporary, the storage step is skipped and execution is performed directly to avoid overwriting commonly used user configurations. Simultaneously, by setting a validity period, expired parameter groups are automatically cleaned up to ensure their validity. For example, when a user uploads a temporary parameter group for a curling accessory through the control device, the styling device executes the parameter group directly without updating the local storage; the parameter group automatically expires after execution.

[0056] It is worth noting that this solution uses an automatic parameter group type determination method to ensure the timeliness of configuration by automatically overwriting non-temporary parameter groups and directly executing temporary parameter groups to avoid accidental overwriting. At the same time, it combines an effective duration mechanism to clean up parameter group data, which can reduce the number of manual steps for users to manage parameter groups, while ensuring the continuous availability of commonly used parameter groups and the flexible application of temporary parameter groups.

[0057] In some embodiments, the soft control logic in this application has universality and scalability in the field of various styling devices. For example, taking the hair dryer field as an example, if the hair dryer body can be used with a curling iron accessory to achieve a one-click process, the logic can also be extended to various scenarios such as curling iron devices and straightener devices to adapt to diverse styling needs, thereby improving the user experience. Specifically, taking the hair dryer body with a curling iron accessory as an example, the complete soft control logic application is implemented as follows: When the user installs the curling iron accessory, the hair dryer body instantly identifies and stores the accessory information through physical mechanisms such as Hall effect magnet sensing; after triggering the one-click styling mode, the system automatically calls the pre-stored accessory information, controls the device to match the target parameter group based on the information (such as the "preheat-curling rotation-cool air setting" sequence optimized for curling hair), and displays the parameter options through the user interface; after the user confirms, the parameter group is sent to the hair dryer, and the device executes the styling actions in sequence. At the same time, it supports adjusting parameters through the styling device interface during operation and synchronizing with the control device to generate a temporary parameter group, so that the hair dryer can achieve intelligent upgrades while maintaining basic functions, realizing parameter storage and execution control.

[0058] This application further proposes that, during the process of the modeling device performing multiple modeling actions, the user obtains the first adjustment information of the target parameter group through the modeling device, and sends the first adjustment information to the control device that is communicatively connected to the modeling device.

[0059] The first adjustment information can be real-time modification data of the parameter group made by the user during the execution process. Specifically, it can be achieved through the touch screen, knob or button input on the modeling device, so that the user can dynamically adjust the parameters according to the actual effect during the operation of the device, avoid modeling deviation caused by the mismatch of preset parameters, and enable the control device to receive and process the parameter information adjusted by the user, so as to provide data support for subsequent parameter optimization.

[0060] For example, when a styling device performs curling, blow-drying, or setting actions according to the target parameter set, if the user finds that the temperature is too high, the airflow is insufficient, or the time setting is unreasonable, they can modify the corresponding parameters in real time through the styling device's function buttons. For instance, they can extend the blow-drying time or adjust the blow-drying temperature. The styling device can collect this adjustment data and mark it as the first adjustment information. Subsequently, the styling device can transmit the first adjustment information to the control device via Bluetooth, Wi-Fi, or network communication methods, enabling the control device to synchronously update parameter configurations or perform storage and analysis.

[0061] refer to Figure 3 , Figure 3 The control method for the styling device provided in this application embodiment is applied to the system architecture diagram of the control device. When the user triggers the one-click styling operation of the styling device (step ①), the styling device will send its own accessory installation information to the control device (step ②). At this time, the control device can obtain the accessory installation information and determine the corresponding target parameter group, and then send the target parameter group to the styling device (step ③), so that the styling device can execute multiple styling actions in sequence according to the received target parameter group (step ④). Through this interaction between the control device and the styling device, it is possible to more accurately match suitable parameter groups for different accessories and improve the convenience of user use.

[0062] refer to Figure 4 , Figure 4 The flowchart of the control method for the modeling equipment provided in the embodiments of this application is applied to the control equipment; in some embodiments, this application provides a control method for the modeling equipment, applied to Figure 3 The control device shown is communicatively connected to the modeling device, and the method includes, but is not limited to, the following steps: Step 401: Obtain the accessory installation information for the modeling equipment; Step 402: Obtain at least one parameter group corresponding to the accessory installation information, and display at least one parameter group through the user interface of the control device. The parameter group includes control parameters and execution durations corresponding to multiple styling actions executed in sequence. Step 403: Identify the target parameter group from at least one parameter group, and send the target parameter group to the modeling device so that the modeling device performs multiple modeling actions in sequence based on the target parameter group.

[0063] Through steps 401 to 403 above, this application can match and display suitable parameter groups based on the accessory installation information of the modeling equipment, which not only provides users with a variety of choices, but also simplifies the parameter group confirmation process through the visual display of the user interface; at the same time, the confirmed target parameter group is sent to the modeling equipment to drive it to perform modeling actions in sequence, realizing the coordinated cooperation between the control equipment and the modeling equipment, and effectively optimizing the user experience.

[0064] The user interface can be a graphical interface to present parameter group options. It can be implemented using lists, thumbnails, or interactive controls to facilitate intuitive selection or adjustment by the user to finally confirm the target parameter group. The parameters are then transmitted to the modeling equipment to ensure that the modeling equipment operates according to the predetermined process.

[0065] Understandably, when a user initiates a styling process via the control device, the device first identifies the type of accessory currently installed, such as a curling iron or straightener, by obtaining the accessory installation information. Subsequently, the control device retrieves multiple parameter sets matching the accessory from the cloud or local storage system and displays them visually on the screen. The user can then select a parameter set by clicking on it. After confirming the target parameter set, the control device sends it to the styling device, which then automatically performs the styling operation according to the sequence of actions and parameters defined in the parameter set.

[0066] Through the above technical solution, this application solves the problems of low efficiency and easy error in manually configuring different styling accessory parameter groups by users, realizes automatic matching and one-click distribution of parameter groups, can effectively reduce user operation steps, and avoid styling effect deviation caused by incorrect parameter settings.

[0067] refer to Figure 5 , Figure 5 The control method for the modeling device provided in the embodiments of this application is applied to another system architecture diagram of the control device; this application further proposes to identify a target parameter group from at least one parameter group, including obtaining a temporary parameter group based on second adjustment information input by the user for at least one parameter group and using it as the target parameter group, or using the parameter group selected by the user in at least one parameter group as the target parameter group in response to the user's selection operation, wherein at least one parameter group includes a system-recommended parameter group and / or a self-configured parameter group, and the self-configured parameter group is obtained based on the user's saving operation for the temporary parameter group.

[0068] Temporary parameter groups can be implemented by receiving adjustment instructions and updating parameter values ​​in real time through parameter adjustment controls in the user interface. System-recommended parameter groups can be default parameter sequences generated based on user history or preset algorithms, or they can be implemented by analyzing user-uploaded pre-modeling images and performing feature matching based on target modeling requirements. Self-configurable parameter groups can be reusable parameter sequences created by saving temporary parameter groups; this can be implemented by setting a save button in the user interface and associating it with the storage module.

[0069] Understandably, when a user selects a styling mode via the control device, the user interface displays the system's recommended parameter set and the saved self-configured parameter set. The user can choose to directly use the system's recommended parameter set or generate a temporary parameter set by adjusting parameters such as temperature, fan speed, and time. If the user is satisfied with the temporary parameter set, they can save it as a self-configured parameter set. In subsequent use, the user can directly call upon the self-configured parameter set without repeated adjustments.

[0070] In some embodiments, the second adjustment information refers to the real-time modification of the system's recommended parameter set by the user through the control device's operating interface (such as a touch screen, knob, or button) during the styling action performed by the styling device. This modification may involve the change of at least one parameter value (such as temperature, wind speed, or execution time), thereby generating a temporary parameter set to adapt to the current styling requirements. This ensures that the styling effect is more in line with personal preferences, while the system's interactivity and adaptability are improved by synchronously updating the parameter configuration through the control device.

[0071] In some embodiments, this application further proposes to determine the effective duration of a self-configured parameter group based on the user's save operation or default configuration information for the temporary parameter group; if the effective duration of the self-configured parameter group is reached, a parameter expiration notification is displayed on the user interface, and in response to the user's extension operation input for the parameter expiration notification, the effective duration of the self-configured parameter group is extended; if the effective duration of the self-configured parameter group is exceeded, the self-configured parameter group is deleted.

[0072] The effective duration can be the time range within which a self-configured parameter group is allowed to remain in the system. This can be achieved by using a preset fixed period or by dynamically setting it based on user operations. When the system detects that the current time exceeds the effective duration, it can use a timer to trigger a cleanup task or a timestamp comparison mechanism to automatically remove the parameter group. The default configuration information refers to the system's preset parameter group management rules, including basic settings such as the default effective duration of the self-configured parameter group, parameter replacement strategy, and storage priority. These settings are derived from the device's factory configuration or are uniformly pushed from the cloud. They are used to ensure that the modeling equipment can still operate normally without user intervention when the user has not set a self-configured parameter group and / or a system-recommended parameter group.

[0073] It is understood that, in this embodiment of the application, the effective duration management mechanism of the self-configurable parameter group includes: when the parameter group is about to expire, the system displays a parameter expiration notification through the user interface of the control device, and the user can enter an extension operation to extend the validity period; if the effective duration is exceeded, the parameter group is automatically deleted. This means that when the user starts the modeling device next time, the expired self-configurable parameter group will not be able to be used directly, but will need to reselect from the system's recommended parameter group (such as recommended options based on pre-modeling image feature matching) to ensure parameter compatibility. This allows the system to proactively ask the user whether to extend the usage time on the last day of the effective duration, thereby reducing interruptions and improving usage continuity.

[0074] In some embodiments, this application further proposes to obtain first adjustment information of the target parameter group by the user through the styling device during the process of the styling device performing multiple styling actions, obtain a temporary parameter group based on the first adjustment information, and display the temporary parameter group on the user interface.

[0075] The first adjustment information can be a real-time modification operation made by the user to the currently executed parameters during the operation of the modeling equipment. For example, the user can change the temperature parameter by rotating the knob or adjust the time parameter value by controlling the slider component on the user interface of the control equipment. This feature allows the user to dynamically modify the target parameter group according to the actual user experience. Furthermore, the temporary parameter group obtained based on the first adjustment information can be dynamically replaced or superimposed with the original parameters of the target parameter group by adjusting the parameters after the first adjustment information, so that the user can quickly adjust the effect without interrupting the current modeling process.

[0076] Understandably, after a temporary parameter group is generated based on the first adjustment information, the user interface of the control device will display the parameter group in real time and keep it synchronized with the parameter values ​​on the modeling device's operation panel, ensuring that the user can intuitively view and adjust it in the interface. The user can save the temporary parameter group as a self-configured parameter group through the save option on the interface. If it is not saved, the temporary parameter group will only be effective once. The next time it is started, the modeling device will automatically read the previously stored system recommended parameter group or the effective self-configured parameter group to maintain the stability and consistency of the parameter settings.

[0077] Furthermore, after the control device generates a temporary parameter group based on the adjusted parameters, the updated parameter combination can be displayed in the user interface in the form of a visual chart or parameter list, making it easy for users to intuitively confirm the adjustments.

[0078] In some embodiments, this application further proposes that the system recommended parameter set is obtained by the following steps: acquiring a pre-styling image input by the user in the user interface; performing feature recognition on the pre-styling image to obtain pre-styling head features; determining the system recommended parameter set based on the pre-styling head features; or, obtaining adjusted pre-styling head features based on the user's adjustment information input for the pre-styling head features, and determining the system recommended parameter set based on the adjusted pre-styling head features; or, acquiring a user-inputted expected styling image, obtaining target styling information based on the expected styling image, and determining the system recommended parameter set based on the target styling information. The pre-styling image can be a raw image of the user's head captured by a camera, which can be achieved using a built-in camera or an external camera device, used to extract physical features related to the hairstyle. Feature recognition can be performed by analyzing hair quality, hair volume, and head shape in the pre-styling image using image processing algorithms, which can be implemented using a convolutional neural network model, used to quantify parameters such as hair density, curl, and scalp contour. The pre-styling head features can be a set of numerical data extracted through feature recognition, which may include hairline position, head circumference, and hair parting pattern, used to match suitable styling parameters. The target design information can be a preset design name or a custom design parameter selected by the user on the interface.

[0079] It is understood that this application can generate the system's recommended parameter set by combining the aforementioned head features and target shape information with the server-side communication connection in the following manner: The head features and target shape information are used as input and mapped to a preset parameter space to filter out one or more parameter groups with the highest matching degree. Alternatively, a preset model, such as an algorithm model adapted to the styling scenario, can be used to calculate and generate a parameter set based on the features of the head and the target styling information. Both methods yield parameter sets that are recommended by the system, sent from the server to the control device, and then displayed through the control device's user interface for user confirmation. In addition, it is also possible to directly match the pre-stored parameter library with the head features before styling (such as hair quality, hair volume, head shape, etc. extracted by image recognition algorithms) to generate the appropriate parameter set; Alternatively, users can be allowed to adjust the identified head features (such as modifying the position or curliness of the hairline) through the device's user interface, and the system will recalculate the parameter set based on the adjusted features; Alternatively, users can upload an image of their desired hairstyle, and the system can extract the target hairstyle information (such as hairstyle outline and curl level) through image analysis and map it to the corresponding parameter group to ensure that the recommended parameter group accurately matches the user's needs and improve the personalization and automation of the styling.

[0080] In some embodiments, this application further proposes acquiring state parameter information of the modeling device during the sequential execution of multiple modeling actions based on a target parameter set; generating warning or prompt information based on the state parameter information; and displaying the warning or prompt information on the user interface. The state parameter information can be physical quantities or operating indicators collected in real time during the operation of the modeling device, reflecting the current working status of the device. The warning or prompt information can be alert content or operation suggestions generated after analyzing the state parameters according to preset thresholds or logical rules, and can be triggered when abnormal parameters or potential risks are detected.

[0081] In some embodiments, the specific implementation process of this application, taking one-click hair curling as an example, can be as follows: After a user triggers the one-click styling mode, the styling device first obtains the information of the currently installed 32mm curling iron accessory and sends it to the control device. The control device, considering the user's hair type (medium-length, slightly wavy, fine), generates and displays a system-recommended parameter set: "(High temperature, 12s) - (Setting, 17s) - (Cool air, 22s), 85℃ upper limit". If the user changes the setting time to 18s, a temporary parameter set is created. If the user saves this temporary parameter set and sets a 7-day validity period, it becomes a self-configurable parameter set. If the user selects this self-configurable parameter set, the control device sends it and its validity period to the styling device. The styling device stores this self-configurable parameter set locally. Within the 7-day validity period, each time the user triggers the one-click curling mode, the system automatically... The system automatically loads the self-configured parameter set from storage, allowing styling actions to be performed according to the preset parameter sequence without user intervention. On the third day of use, the user temporarily modifies the execution duration of the cool air parameter to 15 seconds through the control interface (such as a touch screen or knob) on the styling device, but does not save the changes. Therefore, the styling process is executed according to the temporary parameter set. The next time the one-click curling is triggered, the system will still load the stored self-configured parameter set (including 18 seconds of setting time and 22 seconds of cool air time). After the 7-day validity period expires, the self-configured parameter set is automatically deleted, and the styling device will retrieve the system's recommended parameter set from the control device again when used again.

[0082] refer to Figure 6 , Figure 6This is a schematic diagram of a control device module installed on a styling device according to an embodiment of this application. In some embodiments, this application provides a control device 600 for a styling device, installed on the styling device. The device includes: an information acquisition module 601, configured to receive accessory installation information of the styling device in response to an event that triggers a one-click styling mode; a parameter acquisition module 602, configured to acquire a target parameter set corresponding to the accessory installation information, the target parameter set including control parameters corresponding to multiple styling actions executed in sequence and execution duration; and a styling control module 603, configured to control the styling device to execute multiple styling actions in sequence according to the target parameter set.

[0083] As an alternative, when acquiring the target parameter set corresponding to the accessory installation information, the parameter acquisition module 602 can also be configured to: in response to receiving the target parameter set corresponding to the accessory installation information from the control device, store the target parameter set corresponding to the accessory installation information in the molding device; or, in response to the molding device not establishing a communication connection with the control device, acquire the target parameter set corresponding to the accessory installation information stored in the molding device.

[0084] As an optional approach, when storing the target parameter group corresponding to the accessory installation information in the modeling device in response to receiving the target parameter group corresponding to the accessory installation information from the control device, the parameter acquisition module 602 can also be configured to: in response to receiving the target parameter group corresponding to the accessory installation information from the control device, if the modeling device has not yet stored the target parameter group corresponding to the accessory installation information, then store the target parameter group corresponding to the accessory installation information in the modeling device; if the modeling device has stored the target parameter group corresponding to the accessory installation information, and the received target parameter group is a non-temporary parameter group, then replace the target parameter group corresponding to the accessory installation information stored in the modeling device with the received target parameter group; if the modeling device has stored the target parameter group corresponding to the accessory installation information, and the received target parameter group is a temporary parameter group, then directly execute the temporary parameter group; wherein, if the target parameter group stored in the modeling device exceeds the corresponding valid duration, then delete the target parameter group.

[0085] As an alternative, the control device 600 of the styling equipment may further include: an adjustment information module configured to acquire first adjustment information of the target parameter group by the user through the styling equipment during the execution of multiple styling actions by the styling equipment; and to send the first adjustment information to a control device communicatively connected to the styling equipment.

[0086] refer to Figure 7 , Figure 7This is a schematic diagram of a control device module provided in a control device according to an embodiment of this application. In some embodiments, this application provides a control device 700 for a styling device, which is disposed in the control device and communicatively connected to the styling device. The device includes: an accessory determination module 701, configured to acquire accessory installation information of the styling device; a parameter display module 702, which acquires at least one parameter group corresponding to the accessory installation information and displays at least one parameter group through the user interface of the control device, wherein the parameter group includes control parameters corresponding to multiple styling actions executed in sequence and execution duration; and a parameter determination module 703, configured to identify a target parameter group from the at least one parameter group and send the target parameter group to the styling device so that the styling device executes multiple styling actions in sequence based on the target parameter group.

[0087] As an alternative, when confirming the target parameter group from at least one parameter group, the parameter determination module 703 may also be configured to: obtain a temporary parameter group based on the second adjustment information input by the user for at least one parameter group, and use the temporary parameter group as the target parameter group; or, in response to the user's selection operation, use the parameter group selected by the user from at least one parameter group as the target parameter group, wherein the at least one parameter group includes a system-recommended parameter group and / or a self-configured parameter group, wherein the self-configured parameter group is obtained based on the user's save operation for the temporary parameter group.

[0088] As an optional approach, the parameter determination module 703 can also be configured to: determine the validity period of the self-configured parameter group based on the user's save operation or default configuration information for the temporary parameter group; if the validity period of the self-configured parameter group is reached, display a parameter expiration notification on the user interface, and extend the validity period of the self-configured parameter group in response to the user's extension operation input for the parameter expiration notification; if the validity period of the self-configured parameter group is exceeded, delete the self-configured parameter group.

[0089] As an optional approach, the parameter determination module 703 can also be configured to: obtain second adjustment information of the target parameter group by the user through the modeling device during the process of the modeling device performing multiple modeling actions; obtain a temporary parameter group based on the second adjustment information, and display the temporary parameter group on the user interface.

[0090] As an optional approach, the system recommended parameter set in the parameter determination module 703 can be obtained by the following steps: acquiring the pre-styling image input by the user in the user interface; performing feature recognition on the pre-styling image to obtain the pre-styling head features; determining the system recommended parameter set based on the pre-styling head features; or, obtaining the adjusted pre-styling head features based on the adjustment information input by the user for the pre-styling head features, and determining the system recommended parameter set based on the adjusted pre-styling head features; or, acquiring the expected styling image input by the user, obtaining the target styling information based on the expected styling image, and determining the system recommended parameter set based on the target styling information.

[0091] As an optional approach, the parameter display module 702 can also be configured to: acquire the status parameter information of the modeling device during the process of the modeling device sequentially executing multiple modeling actions based on the target parameter group; generate warning or prompt information based on the status parameter information; and display the warning or prompt information on the user interface.

[0092] This application embodiment also provides a modeling device, including: One or more processors; and A memory associated with one or more processors, the memory being used to store program instructions that, when read and executed by one or more processors, perform the steps of the method of any of the first aspects.

[0093] This application also provides a control device, including: One or more processors; and A memory associated with one or more processors, the memory being used to store program instructions that, when read and executed by one or more processors, perform the steps of the method of any of the second aspects.

[0094] This application also provides a computer program product, including a computer program that, when executed by a processor, implements the steps of any of the methods in the first aspect, or the steps of any of the methods in the second aspect.

[0095] in, Figure 8 The architecture of the modeling device or control device provided in the embodiments of this application is illustrated by way of example, wherein, Figure 8 The terminal device 800 can be a modeling device or a control device. When the terminal device 800 is a modeling device, it can include a control device 600 disposed on the modeling device. When the terminal device 800 is a control device, it can include a control device 700 disposed on the control device.

[0096] Furthermore, such as Figure 8As shown, the modeling device or control device may include a processor 810, a video display adapter 811, a disk drive 812, an input / output interface 813, a network interface 814, and a memory 820. The processor 810, video display adapter 811, disk drive 812, input / output interface 813, network interface 814, and memory 820 can communicate with each other via a communication bus 830.

[0097] The processor 810 can be implemented using a general-purpose CPU, microprocessor, application-specific integrated circuit (ASIC), or one or more integrated circuits to execute relevant programs and implement the technical solution provided in this application.

[0098] The memory 820 can be implemented in the form of ROM (Read Only Memory), RAM (Random Access Memory), static storage device, dynamic storage device, etc. The memory 820 can store the operating system 821 for controlling the operation of the terminal 800, and the basic input / output system (BIOS) 822 for controlling the low-level operations of the terminal 800. Additionally, it can store a web browser 823, a data storage management system 824, and a control device 600 or 700 installed on the modeling device, etc. The aforementioned control device can be the application program that specifically implements the aforementioned steps in this embodiment. In summary, when implementing the technical solution provided in this application through software or firmware, the relevant program code is stored in the memory 820 and executed by the processor 810.

[0099] The input / output interface 813 is used to connect input / output modules to realize information input and output. Input / output modules can be configured as components within the device (not shown in the figure) or externally connected to the device to provide corresponding functions. Input devices may include keyboards, mice, touchscreens, microphones, various sensors, etc., while output devices may include displays, speakers, vibrators, indicator lights, etc.

[0100] Network interface 814 is used to connect a communication module (not shown in the figure) to enable communication between this device and other devices. The communication module can communicate via wired means (such as USB, Ethernet cable, etc.) or wireless means (such as mobile network, WIFI, Bluetooth, etc.).

[0101] Bus 830 includes a pathway for transmitting information between various components of the device, such as processor 810, video display adapter 811, disk drive 812, input / output interface 813, network interface 814, and memory 820.

[0102] It should be noted that although the above-described device only shows the processor 810, video display adapter 811, disk drive 812, input / output interface 813, network interface 814, memory 820, bus 830, etc., in specific implementations, the device may also include other components necessary for normal operation. Furthermore, those skilled in the art will understand that the above-described device may only include the components necessary for implementing the solution of this application, and does not necessarily include all the components shown in the figures.

[0103] As can be seen from the above description of the embodiments, those skilled in the art can clearly understand that this application can be implemented by means of software plus necessary general-purpose hardware platforms. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, can be embodied in the form of a computer program product. This computer program product can be stored in a storage medium, such as ROM / RAM, magnetic disk, optical disk, etc., and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute the methods of various embodiments or some parts of the embodiments of this application.

[0104] The technical solutions provided in this application have been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of this application. The descriptions of the above embodiments are only for the purpose of helping to understand the methods and core ideas of this application. Furthermore, those skilled in the art will recognize that, based on the ideas of this application, there will be changes in the specific implementation methods and application scope. Therefore, the content of this specification should not be construed as a limitation of this application.

Claims

1. A control method for a molding device, characterized in that, The method, applied to the molding device, includes: In response to an event that triggers the one-click styling mode, the accessory installation information of the styling device is received; Obtain a target parameter set corresponding to the accessory installation information, the target parameter set including control parameters and execution time corresponding to multiple styling actions executed in sequence; The modeling device is controlled to perform the multiple modeling actions in sequence according to the target parameter set.

2. The method according to claim 1, characterized in that, The acquisition of the target parameter group corresponding to the accessory installation information includes: In response to receiving a set of target parameters corresponding to the accessory installation information from the control device, the set of target parameters corresponding to the accessory installation information is stored in the molding device; or... In response to the failure of the styling device to establish a communication connection with the control device, the target parameter group corresponding to the accessory installation information stored in the styling device is obtained.

3. The method according to claim 2, characterized in that, The step of responding to receiving a target parameter set corresponding to the accessory installation information from the control device and storing the target parameter set corresponding to the accessory installation information in the molding device includes: In response to receiving a target parameter set corresponding to the accessory installation information from the control device, if the styling device has not yet stored a target parameter set corresponding to the accessory installation information, then the target parameter set corresponding to the accessory installation information is stored in the styling device. If the styling device stores a target parameter group corresponding to the accessory installation information, and the received target parameter group is a non-temporary parameter group, then the target parameter group stored by the styling device corresponding to the accessory installation information is replaced with the received target parameter group. If the molding device stores a target parameter group corresponding to the accessory installation information, and the received target parameter group is a temporary parameter group, then the temporary parameter group is executed directly. If the target parameter group stored in the modeling device exceeds the corresponding valid duration, the target parameter group is deleted.

4. The method according to claim 1, characterized in that, The method further includes: During the process of the styling device performing the multiple styling actions, the first adjustment information of the user on the target parameter group through the styling device is obtained; The first adjustment information is sent to the control device that is communicatively connected to the modeling device.

5. A control method for a molding device, characterized in that, The method is applied to a control device, which is communicatively connected to the molding device, and includes: Obtain the accessory installation information of the modeling equipment; Obtain at least one parameter group corresponding to the accessory installation information, and display the at least one parameter group through the user interface of the control device. The parameter group includes control parameters and execution durations corresponding to multiple styling actions executed in sequence. A target parameter group is identified from the at least one parameter group, and the target parameter group is sent to the modeling device so that the modeling device performs multiple modeling actions in sequence based on the target parameter group.

6. The method according to claim 5, characterized in that, Identifying the target parameter group from the at least one parameter group includes: Based on the second adjustment information input by the user for the at least one parameter group, a temporary parameter group is obtained, and the temporary parameter group is used as the target parameter group; or... In response to a user's selection operation, the parameter group selected by the user from the at least one parameter group is taken as the target parameter group. The at least one parameter group includes a system-recommended parameter group and / or a self-configured parameter group, which is obtained based on the user's save operation on the temporary parameter group.

7. The method according to claim 6, characterized in that, The method further includes: Based on the user's save operation or default configuration information for the temporary parameter group, the effective duration corresponding to the self-configured parameter group is determined; If the effective duration corresponding to the self-configurable parameter group is reached, a parameter expiration notification is displayed on the user interface. In response to the user's extension operation input for the parameter expiration notification, the effective duration corresponding to the self-configurable parameter group is extended. If the effective duration corresponding to the self-configured parameter group is exceeded, then the self-configured parameter group is deleted.

8. The method according to claim 6, characterized in that, The method further includes: During the process of the styling device performing the multiple styling actions, the user obtains the first adjustment information of the target parameter group through the styling device. Based on the first adjustment information, a temporary parameter group is obtained and displayed on the user interface.

9. The method according to claim 6, characterized in that, The system's recommended parameter set is obtained through the following steps: Obtain the image of the shape input by the user in the user interface; Feature recognition is performed on the image before styling to obtain the head features before styling; Based on the aforementioned head features, determine the system's recommended parameter set; or, Based on the adjustment information input by the user regarding the front head features of the hairstyle, the adjusted front head features are obtained. Based on the adjusted front head features, a system-recommended parameter set is determined; or... The system obtains the expected shape image input by the user, obtains the target shape information based on the expected shape image, and determines the system's recommended parameter group based on the target shape information.

10. The method according to claim 5, characterized in that, The method further includes: During the process of the modeling device sequentially executing multiple modeling actions based on the target parameter set, the state parameter information of the modeling device is obtained; Based on the status parameter information, a warning or prompt message is generated and displayed on the user interface.

11. A control device for a molding apparatus, disposed in the molding apparatus, characterized in that, The device includes: The information acquisition module is configured to receive accessory installation information of the styling device in response to an event that triggers the one-click styling mode; The parameter acquisition module is configured to acquire a target parameter set corresponding to the accessory installation information. The target parameter set includes control parameters and execution durations corresponding to multiple styling actions executed in sequence. The styling control module is configured to control the styling device to execute the plurality of styling actions in sequence according to the target parameter set.

12. A control device for a molding equipment, disposed in the control equipment, characterized in that, The control device is communicatively connected to the molding device, and the device includes: The accessory determination module is configured to obtain accessory installation information of the modeling equipment; The parameter display module acquires at least one parameter group corresponding to the accessory installation information and displays the at least one parameter group through the user interface of the control device. The parameter group includes control parameters and execution time corresponding to multiple styling actions executed in sequence. The parameter determination module is configured to identify a target parameter group from the at least one parameter group and send the target parameter group to the modeling device so that the modeling device performs multiple modeling actions in sequence based on the target parameter group.

13. A molding device, characterized in that, include: One or more processors; as well as A memory associated with the one or more processors, the memory being used to store program instructions that, when read and executed by the one or more processors, perform the steps of the method according to any one of claims 1 to 4.

14. A control device, characterized in that, include: One or more processors; as well as A memory associated with the one or more processors, the memory being used to store program instructions that, when read and executed by the one or more processors, perform the steps of the method according to any one of claims 5 to 10.

15. A computer program product, comprising a computer program, characterized in that, When executed by a processor, the computer program implements the steps of the method according to any one of claims 1 to 4, or the steps of the method according to any one of claims 5 to 10.