Cosmetic instrument nursing interface display control method, storage medium and electronic equipment

By obtaining the care mode and skin parameters of the beauty instrument in real time, controlling the shape and dynamic changes of the display sphere, the problem of poor interaction between the existing beauty instrument interface is solved and a more intuitive user experience is achieved.

CN120199445APending Publication Date: 2025-06-24FLOSSOM (GD) BEAUTY TECH CO LTD
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Patent Information

Application Number
CN202510275467.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-10
Publication Date
2025-06-24

AI Technical Summary

Technical Problem

The display interface of existing beauty instruments only displays the usage mode, lacking concrete feedback on the usage status and effects, resulting in poor user interaction with the instrument, affecting the user experience.

Method used

By obtaining the current care mode of the beauty device, using the handle and real-time skin parameters, the morphology and dynamic changes of the sphere are displayed in real time, including the sphere surface pattern, color and halo to reflect the care mode and skin status.

Benefits of technology

It realizes intuitive feedback on the usage status and effects of the beauty instrument, enhances the interaction between users and instruments, and improves the user experience.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention discloses a beauty instrument nursing interface display control method, a storage medium and electronic equipment. The method comprises the following steps: acquiring a current nursing mode, a currently used handle and real-time skin parameters of a beauty instrument; according to the current nursing mode and / or the currently used handle, determining the form of the displayed sphere, and according to the currently used handle, determining a primary parameter and a secondary parameter in the skin parameters; and controlling and displaying the dynamic change of the sphere according to the real-time primary parameter and the real-time secondary parameter. The form of the display ball is determined according to the current nursing mode and / or the currently used handle of the beauty instrument, then the main parameter and the secondary parameter are determined according to the currently used handle, and the dynamic change of the display ball is controlled according to the real-time main parameter and the real-time secondary parameter. The display ball body can display different forms according to the nursing mode and the use handle, and the dynamic change of the display ball body can be realized according to the real-time state of the skin, so that a user can intuitively perceive the change of the nursing process and the skin state, and the interaction feeling is increased.
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Description

Technical Field

[0001] This application relates to the technical field of interface display, and particularly to a control method, a storage medium, and an electronic device for displaying a beauty instrument care interface. Background Art

[0002] With the increasing demand for beauty and skin care among people, beauty instruments, as a non-invasive and safe beauty device, have been widely used in families and beauty salons. For desktop beauty instruments, they have an operation display interface for mode switching and showing the usage status. Currently, the display interface of beauty instruments only shows the usage mode during use. Users do not have a concrete understanding of the usage status and effects of beauty instruments, and the interaction between the instrument and users is poor, affecting the user experience. Summary of the Invention

[0003] The purpose of this application is to overcome the deficiency in the prior art that the poor interaction affects the user experience, and to provide a control method, a storage medium, and an electronic device for displaying a beauty instrument care interface that can display in real time according to the usage status, so as to improve the interaction during user use.

[0004] The technical solution of this application provides a control method for displaying a beauty instrument care interface, including:

[0005] Obtain the current care mode, the current used handle, and real-time skin parameters of the beauty instrument;

[0006] Determine the shape of the display sphere according to the current care mode and / or the current used handle, and determine the main parameter and the secondary parameter in the skin parameters according to the current used handle;

[0007] Control the dynamic change of the display sphere according to the real-time main parameter and the real-time secondary parameter.

[0008] Furthermore, the shape of the display sphere includes the pattern on the sphere surface, the color of the sphere, and the sphere halo;

[0009] The determining the shape of the display sphere according to the current care mode and / or the current used handle specifically includes:

[0010] Determine the pattern on the sphere surface and the color of the sphere according to the current care mode;

[0011] Determine the sphere halo according to the current used handle.

[0012] Furthermore, the care mode includes a sensitive skin care mode, a professional anti-aging mode, and a brightening and whitening mode;

[0013] The determining the pattern on the sphere surface and the color of the sphere according to the current care mode specifically includes:

[0014] If the current care mode is the sensitive skin care mode, determine that the pattern on the sphere surface is a circular dot matrix and the sphere color is golden;

[0015] If the current care mode is the professional anti-aging mode, determine that the pattern on the sphere surface is a linear stripe and the sphere color is purple;

[0016] If the current care mode is the brightening and whitening mode, determine that the pattern on the sphere surface is a glowing surface and the sphere color is milky white.

[0017] Furthermore, the handle includes a penetration enhancing handle, a lifting handle, a firming handle, and an ice compress handle;

[0018] Determining the sphere halo according to the currently used handle specifically includes:

[0019] If the currently used handle is the penetration enhancing handle, determine that the sphere halo is photon scattering;

[0020] If the currently used handle is the lifting handle, determine that the sphere halo is a streamline light band;

[0021] If the currently used handle is the firming handle, determine that the sphere halo is concentric circle ripples;

[0022] If the currently used handle is the ice compress handle, determine that the sphere halo is a blue sheet-shaped light band.

[0023] Furthermore, the skin parameters include moisture, temperature, impedance, and elasticity;

[0024] Determining the main parameter and the secondary parameter among the skin parameters according to the currently used handle specifically includes:

[0025] If the currently used handle is the penetration enhancing handle, determine that moisture is the main parameter and temperature, impedance, and elasticity are the secondary parameters;

[0026] If the currently used handle is the lifting handle, determine that elasticity is the main parameter and moisture, temperature, and impedance are the secondary parameters;

[0027] If the currently used handle is the firming handle, determine that impedance is the main parameter and moisture, temperature, and elasticity are the secondary parameters;

[0028] If the currently used handle is the ice compress handle, determine that temperature is the main parameter and moisture, impedance, and elasticity are the secondary parameters.

[0029] Furthermore, controlling the dynamic changes of the display sphere according to the real-time main parameter and the real-time secondary parameter specifically includes:

[0030] Calculate the dynamic coefficient according to the real-time main parameter and the real-time secondary parameter:

[0031] k = aZ + bY1 + bY2 + bY3;

[0032] Wherein, Z is the real-time main parameter, Y1, Y2, and Y3 are real-time secondary parameters, a and b are weight coefficients, where a is greater than b, and a + 3b = 1;

[0033] Control the dynamic change of the display sphere according to the dynamic coefficient.

[0034] Furthermore, the form of the display sphere includes the sphere surface pattern, and the sphere surface pattern includes a circular dot matrix, linear stripes, and a light-emitting surface;

[0035] The control of the dynamic change of the display sphere according to the dynamic coefficient specifically includes:

[0036] When the sphere surface pattern is a circular dot matrix, determine the real-time dot diameter and real-time dot pitch of the circular dot matrix according to the circular dot diameter range, circular dot pitch range, and the dynamic coefficient;

[0037] When the sphere surface pattern is linear stripes, determine the real-time line thickness and real-time line spacing of the linear stripes according to the line thickness range, line spacing range, and the dynamic coefficient;

[0038] When the sphere surface pattern is a light-emitting surface, determine the real-time transparency and real-time brightness of the light-emitting surface according to the transparency range, brightness range, and the dynamic coefficient.

[0039] Furthermore, the form of the display sphere includes the sphere color;

[0040] The control of the dynamic change of the display sphere according to the dynamic coefficient specifically includes:

[0041] Determine the real-time vividness of the sphere color according to the color vividness range and the dynamic coefficient;

[0042] Determine the real-time saturation of the sphere color according to the color saturation range and the dynamic coefficient;

[0043] Determine the real-time sphere color according to the real-time vividness and the real-time saturation.

[0044] Furthermore, the form of the display sphere includes the sphere halo, and there are moving light points on the sphere halo;

[0045] The method further includes:

[0046] Obtain the real-time position of the handle;

[0047] Determine the real-time position of the moving light point according to the real-time position of the handle.

[0048] The technical solution of the present application also provides a storage medium, which stores computer instructions. When a computer executes the computer instructions, it is used to execute the control method for displaying the beauty instrument care interface as described above.

[0049] The technical solution of the present application also provides an electronic device, including at least one processor; and,

[0050] a memory communicatively connected to the at least one processor; wherein,

[0051] the memory stores instructions executable by the at least one processor, and the instructions are executed by the at least one processor so that the at least one processor can execute the control method for displaying the beauty instrument care interface as described above.

[0052] After adopting the above technical solution, the following beneficial effects are achieved:

[0053] The present application first determines the shape of the display sphere according to the current care mode of the beauty instrument and / or the currently used handle, and then determines the main parameters and secondary parameters according to the currently used handle. The dynamic change of the display sphere is controlled according to the real-time main parameters and real-time secondary parameters. The display sphere can display different shapes according to the care mode and the used handle, and can realize the dynamic change of the display sphere according to the real-time state of the skin, enabling the user to intuitively perceive the changes in the care process and the skin state and increasing the sense of interaction. Description of the Drawings

[0054] Referring to the drawings, the disclosure of the present application will become more understandable. It should be understood that these drawings are only for illustrative purposes and are not intended to limit the scope of protection of the present application. In the figures:

[0055] Figure 1 is a flowchart of the control method for displaying the care interface;

[0056] Figure 2 is a schematic diagram of the display sphere when using the penetration-enhancing handle in the sensitive skin care mode;

[0057] Figure 3 is a schematic diagram of the display sphere when using the lifting handle in the professional anti-aging mode;

[0058] Figure 4 is a schematic diagram of the display sphere when using the firming handle in the brightening and whitening mode;

[0059] Figure 5 is a schematic diagram of the display sphere when using the ice compress handle in the brightening and whitening mode;

[0060] Figure 6 is a flowchart of the control method for displaying the care interface in the sensitive skin care mode in a preferred embodiment of the present application;

[0061] Figure 7 It is a flowchart of a control method for displaying a nursing interface in a professional anti-aging mode in a preferred embodiment of the present application;

[0062] Figure 8 It is a flowchart of a control method for displaying a nursing interface in a brightening and whitening mode in a preferred embodiment of the present application;

[0063] Figure 9 It is a schematic diagram of the hardware structure of an electronic device in an embodiment of the present application. Detailed implementation manners

[0064] The following further describes the detailed implementation manners of the present application with reference to the accompanying drawings.

[0065] It is easy to understand that according to the technical solution of the present application, under the condition of not changing the essence of the present application, there are various structural manners and implementation manners that can be mutually replaced by those of ordinary skill in the art. Therefore, the following detailed implementation manners and the accompanying drawings are only exemplary descriptions of the technical solution of the present application, and should not be regarded as the whole of the present application or as a limitation or restriction on the technical solution of the application.

[0066] The orientation terms such as up, down, left, right, front, back, front side, back side, top, bottom, etc. mentioned or possibly mentioned in this specification are defined relative to the structures shown in the respective drawings, and they are relative concepts. Therefore, they may change accordingly according to their different positions and different usage states. Therefore, these or other orientation terms should not be construed as restrictive terms. In addition, the terms "first", "second", and "third" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance.

[0067] In the description of the present application, it should be noted that unless otherwise clearly specified and limited, the terms "installed", "connected", and "coupled" should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or an integral connection; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific situations.

[0068] Control method for displaying the beauty instrument nursing interface:

[0069] The control method for displaying the beauty instrument nursing interface in the embodiment of the present application, as Figure 1 shown, includes:

[0070] Step S101: Obtain the current nursing mode of the beauty instrument, the currently used handle, and real-time skin parameters.

[0071] Step S102: Determine the morphology of the display sphere according to the current care mode and / or the currently used handle, and determine the main parameter and the secondary parameter in the skin parameters according to the currently used handle.

[0072] Step S103: Control the dynamic change of the display sphere according to the real-time main parameter and the real-time secondary parameter.

[0073] This application is applied to a beauty device with a display device. The display device can be built-in to the beauty device or external. The beauty device has multiple care modes and multiple used handles. When in use, each care mode can be used in combination with a different used handle, and each used handle has different physical functions. As an example, the care modes include a sensitive skin care mode, a professional anti-aging mode, and a brightening and whitening mode, and the used handles include a penetration enhancing handle, a lifting handle, a firming handle, and an ice compress handle. The care modes and the used handles can be used in any combination. During the care process, a display sphere is shown on the display device to reflect the care process. The display sphere can have different surface patterns, colors, and halos, and the surface patterns, colors, and halos can all achieve dynamic changes during the care process.

[0074] Specifically, when receiving an instruction to start the care of the beauty device, obtain the current care mode of the beauty device, the currently used handle, and detect the preset skin parameters in real time. The skin parameters can include moisture, temperature, impedance, and elasticity, and the skin parameters can be detected every set time interval (for example, 0.1 s).

[0075] When controlling the display interface, first determine the morphology of the display sphere according to the current care mode and / or the currently used handle, then determine the main parameter and the secondary parameter according to the currently used handle, and control the real-time dynamic change of the display sphere by the real-time main parameter and the real-time secondary parameter.

[0076] Among them, the basic morphology of the display sphere is jointly determined by the current care mode and the currently used handle. Different care modes and used handles will change the morphology of the display sphere, improving the interaction sense of the sphere display. Since different used handles focus on different physical effects, different main parameters and secondary parameters are correspondingly set to control the real-time dynamic change of the display sphere. The control weight of the main parameter over the change amplitude of the display sphere is greater than the control weight of the secondary parameter over the change amplitude of the display sphere, so that the change amplitude of the display sphere focuses more on the physical effect of the currently used handle, thus more intuitively showing the user the real-time care effect.

[0077] This application first determines the shape of the display sphere according to the current care mode of the beauty device and / or the currently used handle, then determines the main parameters and secondary parameters according to the currently used handle, and controls the dynamic changes of the display sphere according to the real-time main parameters and real-time secondary parameters. The display sphere can display different shapes according to the care mode and the used handle, and can realize the dynamic changes of the display sphere according to the real-time state of the skin, enabling the user to intuitively perceive the changes in the care process and the skin state, and enhancing the sense of interaction.

[0078] In one embodiment, the shape of the display sphere includes the sphere surface pattern, the sphere color, and the sphere halo;

[0079] Determining the shape of the display sphere according to the current care mode and / or the currently used handle specifically includes:

[0080] Determining the sphere surface pattern and the sphere color according to the current care mode;

[0081] Determining the sphere halo according to the currently used handle.

[0082] In the embodiment of this application, the sphere surface pattern and the sphere color are first determined according to the current care mode, and then the sphere halo is determined according to the currently used handle, which reflects the simulation effect that the sphere simulates the skin and the sphere halo simulates the energy injection of the handle, so as to intuitively show the care process to the user.

[0083] Specifically, the care modes include the sensitive skin care mode, the professional anti-aging mode, and the brightening and whitening mode;

[0084] Determining the sphere surface pattern and the sphere color according to the current care mode specifically includes:

[0085] If the current care mode is the sensitive skin care mode, then determine that the sphere surface pattern is a circular dot matrix and the sphere color is golden;

[0086] If the current care mode is the professional anti-aging mode, then determine that the sphere surface pattern is a linear stripe and the sphere color is purple;

[0087] If the current care mode is the brightening and whitening mode, then determine that the sphere surface pattern is a glowing surface and the sphere color is milky white.

[0088] For the care effects of different modes, different sphere surface patterns and sphere colors are correspondingly determined to simulate the skin state to a certain extent.

[0089] The used handles include the penetration-enhancing handle, the lifting handle, the firming handle, and the ice compress handle;

[0090] Determining the sphere halo according to the currently used handle specifically includes:

[0091] If the currently used handle is the penetration-enhancing handle, determine that the sphere halo is photon scattering;

[0092] If the currently used handle is the lifting handle, determine that the sphere halo is a streamlined light band;

[0093] If the currently used handle is the firming handle, determine that the sphere halo is concentric ripples;

[0094] If the currently used handle is the ice compress handle, determine that the sphere halo is a blue sheet-shaped light band.

[0095] For different functions of the used handle, set the sphere halo to different forms to simulate different energy states.

[0096] Figures 2 - 5 Examples of four display states of the displayed sphere are shown: Figure 2 Schematic diagram of the displayed sphere when using the penetration-enhancing handle in the sensitive skin care mode; Figure 3 Schematic diagram of the displayed sphere when using the lifting handle in the professional anti-aging mode; Figure 4 Schematic diagram of the displayed sphere when using the firming handle in the brightening and whitening mode; Figure 5 Schematic diagram of the displayed sphere when using the ice compress handle in the brightening and whitening mode.

[0097] In one embodiment, the skin parameters include moisture, temperature, impedance, and elasticity;

[0098] Determine the main parameter and secondary parameters from the skin parameters according to the currently used handle, specifically including:

[0099] If the currently used handle is the penetration-enhancing handle, determine that moisture is the main parameter, and temperature, impedance, and elasticity are the secondary parameters;

[0100] If the currently used handle is the lifting handle, determine that elasticity is the main parameter, and moisture, temperature, and impedance are the secondary parameters;

[0101] If the currently used handle is the firming handle, determine that impedance is the main parameter, and moisture, temperature, and elasticity are the secondary parameters;

[0102] If the currently used handle is the ice compress handle, determine that temperature is the main parameter, and moisture, impedance, and elasticity are the secondary parameters.

[0103] Specifically, the skin parameters can be obtained by installing corresponding sensors on the handle, or can be obtained by calculating other parameters. For example, moisture, temperature, and impedance can be detected by sensors, and elasticity can be deduced from the change rate of impedance. The change amount of impedance within the set time period divided by the value of the set time period is the elasticity parameter.

[0104] The function of the penetration-enhancing handle is to improve the penetration and absorption of the essence liquid, so the main parameter is determined as moisture, and other parameters are secondary parameters; the function of the lifting handle is to lift the skin and weaken the state of skin relaxation and aging, so the main parameter is determined as elasticity, and other parameters are secondary parameters; the function of the firming handle is to shrink pores and improve the firmness of the skin, so the main parameter is determined as impedance, and other parameters are secondary parameters; the function of the ice compress handle is to soothe and cool the skin and improve the state of skin redness and allergy, so the temperature is determined as the main parameter, and other parameters are secondary parameters.

[0105] The embodiment of the present application can reasonably determine the skin parameter with the highest relevance as the main parameter according to the effects of different used handles, and other parameters are secondary parameters.

[0106] In one embodiment, the dynamic change of the display sphere is controlled according to the real-time main parameter and the real-time secondary parameter, which specifically includes:

[0107] Calculate the dynamic coefficient according to the real-time main parameter and the real-time secondary parameter:

[0108] k = aZ + bY1 + bY2 + bY3;

[0109] Wherein, Z is the real-time main parameter, Y1, Y2, Y3 are real-time secondary parameters, a and b are weight coefficients, where a is greater than b, and a + 3b = 1;

[0110] Control the dynamic change of the display sphere according to the dynamic coefficient.

[0111] Specifically, for each skin parameter, an upper limit threshold can be set, and the detected real-time skin parameter is divided by the corresponding upper limit threshold, and the obtained value is the value of the real-time main parameter and the real-time secondary parameter used in the above formula calculation. After such calculation, both the real-time main parameter and the real-time secondary parameter are values less than 1, so that the calculated dynamic coefficient is also a value less than 1.

[0112] Wherein, a is greater than b, and a + 3b = 1, for example, a = 0.4 and b = 0.2.

[0113] In the embodiment of the present application, the dynamic coefficient is first calculated according to the real-time main parameter and the real-time secondary parameter, and then the dynamic change of the display sphere is controlled according to the dynamic coefficient, which can make the dynamic of the display sphere focus more on the main parameter.

[0114] In one embodiment, the form of the display sphere includes the pattern on the sphere surface, and the pattern on the sphere surface includes circular dot matrix, linear stripes and luminous surface;

[0115] Control the dynamic change of the display sphere according to the dynamic coefficient, which specifically includes:

[0116] When the pattern on the sphere surface is a circular dot matrix, the real-time dot diameter and dot pitch of the circular dot matrix are determined according to the dot diameter range, dot pitch range, and dynamic coefficient;

[0117] When the pattern on the sphere surface is a linear stripe, the real-time line thickness and line spacing of the linear stripe are determined according to the line thickness range, line spacing range, and dynamic coefficient;

[0118] When the pattern on the sphere surface is a light-emitting surface, the real-time transparency and real-time brightness of the light-emitting surface are determined according to the transparency range, brightness range, and dynamic coefficient.

[0119] As Figure 2 shown, when the pattern on the sphere surface is a circular dot matrix, both the dot diameter and dot pitch of the circular dots can change dynamically during the nursing process:

[0120] The dot diameter range is R min ~R max , then the real-time dot diameter R = k(R max -R min ), where k is the dynamic coefficient.

[0121] The dot pitch range is L min ~L max , then the real-time dot pitch L = k(L max -L min ), where k is the dynamic coefficient.

[0122] As Figure 3 shown, when the pattern on the sphere surface is a linear stripe, both the line thickness and line spacing can change dynamically during the nursing process:

[0123] The line thickness range is W min ~W max , then the real-time line thickness W = k(W max -W min ), where k is the dynamic coefficient.

[0124] The line spacing range is F min ~F max , then the real-time line spacing F = k(F max -F min ), where k is the dynamic coefficient.

[0125] As Figure 4 shown, when the pattern on the sphere surface is a light-emitting surface, both the sphere transparency and sphere brightness can change dynamically during the nursing process:

[0126] The transparency range is T min ~T max , then the real-time transparency T = k(T max -T min), where k is a dynamic coefficient.

[0127] The brightness range is B min ~B max , then the real-time brightness B = k(B max -B min ), where k is a dynamic coefficient.

[0128] In one embodiment, the form of the display sphere includes the sphere color;

[0129] Controlling the dynamic change of the display sphere according to the dynamic coefficient specifically includes:

[0130] Determining the real-time vividness of the sphere color according to the color vividness range and the dynamic coefficient;

[0131] Determining the real-time saturation of the sphere color according to the color saturation range and the dynamic coefficient;

[0132] Determining the real-time sphere color according to the real-time vividness and the real-time saturation.

[0133] In the embodiments of the present application, the real-time vividness and the real-time saturation of the sphere color are adjusted by the dynamic coefficient, and the depth change of the sphere color is realized by combining the real-time vividness and the real-time saturation. Similar to the dynamic change of the pattern on the sphere surface, the color vividness and the color saturation of the sphere color are both determined by the maximum value, the minimum value and the dynamic coefficient. Specifically:

[0134] The color vividness range is V min ~V max , then the real-time vividness V = k(V max -V min ), where k is a dynamic coefficient.

[0135] The color saturation range is S min ~S max , then the real-time saturation S = k(S max -S min ), where k is a dynamic coefficient.

[0136] For different sphere colors, different color vividness ranges and color saturation ranges can be set.

[0137] In one embodiment, the form of the display sphere includes a sphere halo, and there is a moving light spot on the sphere halo;

[0138] The method further includes:

[0139] Obtaining the real-time position of the handle;

[0140] Determining the real-time position of the moving light spot according to the real-time position of the handle.

[0141] Specifically, the real-time position of the handle can be obtained by installing a three-axis displacement sensor on the handle. At the beginning of each care session, it starts moving on the skin with a preset position as the initial care position, and the moving light point on the spherical halo is also at the initial light point position. The three-axis displacement data of the handle is detected at regular intervals, and the three-axis displacement is proportionally mapped to the moving spherical halo to correspondingly adjust the position of the moving light point, thereby realizing the real-time movement of the position of the moving light point following the use of the handle, thus enhancing the interactive experience of the user.

[0142] Figures 6 - 8 The flowchart of the control method for the display of the beauty instrument care interface in a preferred embodiment of the present application is shown.

[0143] Figure 6 It is the control flow for the display of the beauty instrument care interface when the current care mode is the sensitive skin care mode, specifically including:

[0144] Step S601: Obtain the current care mode of the beauty instrument, the currently used handle, the real-time skin parameters, and the real-time position of the handle.

[0145] Step S602: When the current care mode is the sensitive skin care mode, determine that the pattern on the sphere surface is a circular dot matrix and the color of the sphere is golden.

[0146] Step S603: Determine the currently used handle. If the currently used handle is the penetration-enhancing handle, then execute step S604; if the currently used handle is the lifting handle, then execute step S605; if the currently used handle is the firming handle, then execute step S606; if the currently used handle is the ice compress handle, then execute step S607.

[0147] Step S604: Determine that the sphere halo is photon scattering, determine that moisture is the main parameter, and temperature, impedance, and elasticity are secondary parameters, and then execute step S608.

[0148] Step S605: Determine that the sphere halo is a streamline light band, determine that elasticity is the main parameter, and moisture, temperature, and impedance are secondary parameters, and then execute step S608.

[0149] Step S606: Determine that the sphere halo is concentric circle ripples, determine that impedance is the main parameter, and moisture, temperature, and elasticity are secondary parameters, and then execute step S608.

[0150] Step S607: Determine that the sphere halo is a blue sheet-like light band, determine that temperature is the main parameter, and moisture, impedance, and elasticity are secondary parameters, and then execute step S608.

[0151] Step S608: Calculate the dynamic coefficient according to the real-time main parameter and the real-time secondary parameters.

[0152] Step S609: Determine the real-time dot diameter and dot pitch of the dot matrix according to the dot diameter range, dot pitch range, and dynamic coefficient.

[0153] Step S610: Determine the real-time vividness of the sphere color according to the vividness range and dynamic coefficient, determine the real-time saturation of the sphere color according to the saturation range and dynamic coefficient, and determine the real-time sphere color according to the real-time vividness and real-time saturation.

[0154] Step S611: Determine the real-time position of the moving light point on the sphere halo according to the real-time position of the handle.

[0155] Figure 7 It is the control process displayed on the beauty instrument care interface when the current care mode is the professional anti-aging mode, specifically including:

[0156] Step S701: Obtain the current care mode of the beauty instrument, the currently used handle, real-time skin parameters, and the real-time position of the handle.

[0157] Step S702: When the current care mode is the professional anti-aging mode, determine that the surface pattern of the sphere is a linear stripe and the sphere color is purple.

[0158] Step S703: Judge the currently used handle. If the currently used handle is the penetration-enhancing handle, then execute Step S704. If the currently used handle is the lifting handle, then execute Step S705. If the currently used handle is the firming handle, then execute Step S706. If the currently used handle is the ice compress handle, then execute Step S707.

[0159] Step S704: Determine that the sphere halo is photon scattering, determine that moisture is the main parameter, and temperature, impedance, and elasticity are secondary parameters, and then execute Step S708.

[0160] Step S705: Determine that the sphere halo is a streamline light band, determine that elasticity is the main parameter, and moisture, temperature, and impedance are secondary parameters, and then execute Step S708.

[0161] Step S706: Determine that the sphere halo is concentric circle ripples, determine that impedance is the main parameter, and moisture, temperature, and elasticity are secondary parameters, and then execute Step S708.

[0162] Step S707: Determine that the sphere halo is a blue sheet light band, determine that temperature is the main parameter, and moisture, impedance, and elasticity are secondary parameters, and then execute Step S708.

[0163] Step S708: Calculate the dynamic coefficient according to the real-time main parameter and real-time secondary parameters.

[0164] Step S709: Determine the real-time thickness and real-time spacing of the linear stripe according to the line thickness range, line spacing range, and dynamic coefficient.

[0165] Step S710: Determine the real-time vividness of the sphere color according to the vividness range and the dynamic coefficient, determine the real-time saturation of the sphere color according to the saturation range and the dynamic coefficient, and determine the real-time sphere color according to the real-time vividness and the real-time saturation.

[0166] Step S711: Determine the real-time position of the moving light point on the sphere halo according to the real-time position of the handle.

[0167] Figure 8 It is the control process displayed on the beauty instrument care interface when the current care mode is the brightening and whitening mode, specifically including:

[0168] Step S801: Obtain the current care mode of the beauty instrument, the currently used handle, the real-time skin parameters, and the real-time position of the handle.

[0169] Step S802: When the current care mode is the brightening and whitening mode, determine that the surface pattern of the sphere is a glowing surface, and the sphere color is milky white.

[0170] Step S803: Judge the currently used handle. If the currently used handle is the penetration-enhancing handle, then execute Step S804. If the currently used handle is the lifting handle, then execute Step S805. If the currently used handle is the firming handle, then execute Step S806. If the currently used handle is the ice compress handle, then execute Step S807.

[0171] Step S804: Determine that the sphere halo is photon scattering, determine that moisture is the main parameter, and temperature, impedance, and elasticity are secondary parameters, and then execute Step S808.

[0172] Step S805: Determine that the sphere halo is a streamline light band, determine that elasticity is the main parameter, and moisture, temperature, and impedance are secondary parameters, and then execute Step S808.

[0173] Step S806: Determine that the sphere halo is concentric circles of ripples, determine that impedance is the main parameter, and moisture, temperature, and elasticity are secondary parameters, and then execute Step S808.

[0174] Step S807: Determine that the sphere halo is a blue sheet-like light band, determine that temperature is the main parameter, and moisture, impedance, and elasticity are secondary parameters, and then execute Step S808.

[0175] Step S808: Calculate the dynamic coefficient according to the real-time main parameter and the real-time secondary parameter.

[0176] Step S809: Determine the real-time transparency and the real-time brightness of the glowing surface according to the transparency range, the brightness range, and the dynamic coefficient.

[0177] Step S810: Determine the real-time vividness of the sphere color according to the vividness range and the dynamic coefficient, determine the real-time saturation of the sphere color according to the saturation range and the dynamic coefficient, and determine the real-time sphere color according to the real-time vividness and the real-time saturation.

[0178] Step S811: Determine the real-time position of the moving light point on the sphere halo according to the real-time position of the handle.

[0179] The technical solution of the present application also provides a storage medium, which stores computer instructions. When a computer executes the computer instructions, it is used to execute the control method for displaying the beauty instrument care interface in any of the foregoing embodiments.

[0180] Figure 9 An electronic device of the present application is shown, including:

[0181] At least one processor 901; and,

[0182] A memory 902 communicatively connected to the at least one processor 901; wherein,

[0183] The memory 902 stores instructions executable by the at least one processor 901. The instructions are executed by the at least one processor 901 so that the at least one processor 901 can execute all steps of the control method for displaying the beauty instrument care interface in any of the foregoing method embodiments.

[0184] Figure 9 Taking one processor 901 as an example:

[0185] The electronic device may further include: an input device 903 and an output device 904.

[0186] The processor 901, the memory 902, the input device 903 and the output device 904 may be connected by a bus or other means. In the figure, the connection by a bus is taken as an example.

[0187] The memory 902, as a non-volatile computer-readable storage medium, can be used to store non-volatile software programs, non-volatile computer-executable programs and modules, such as the program instructions / modules corresponding to the control method for displaying the beauty instrument care interface in the embodiments of the present application. For example, Figure 1 or Figures 6 - 8 The method flow shown. The processor 901 executes various functional applications and data processing by running the non-volatile software programs, instructions and modules stored in the memory 902, that is, implements the control method for displaying the beauty instrument care interface in the above embodiments.

[0188] The memory 902 may include a program storage area and a data storage area. The program storage area may store an operating system and application programs required for at least one function. The data storage area may store data created according to the use of the control method displayed on the beauty instrument care interface, etc. In addition, the memory 902 may include a high-speed random access memory and may also include a non-volatile memory, such as at least one magnetic disk storage device, a flash memory device, or other non-volatile solid-state storage devices. In some embodiments, the memory 902 may optionally include a memory remotely provided with respect to the processor 901, and these remote memories may be connected to the device executing the control method for the beauty instrument care interface display through a network. Examples of the above network include but are not limited to the Internet, an intranet, a local area network, a mobile communication network, and combinations thereof.

[0189] The input device 903 may receive input user clicks and generate signal inputs related to user settings and function controls of the control method displayed on the beauty instrument care interface. The output device 904 may include a display device such as a display screen.

[0190] When the one or more modules are stored in the memory 902 and run by the one or more processors 901, the control method for the beauty instrument care interface display in any of the above method embodiments is executed.

[0191] The above are only the principles and preferred embodiments of the present application. It should be noted that for those of ordinary skill in the art, the embodiments obtained by appropriately combining the technical solutions separately disclosed in different embodiments are also included within the technical scope of the present invention. Based on the principles of the present application, several other variations can also be made, which should also be regarded as the protection scope of the present application.

Claims

1. A method for controlling the display of a beauty instrument care interface, characterized in that: include: Get the current care mode of the beauty instrument, the current handle in use and real-time skin parameters; Determine the shape of the display sphere according to the current care mode and / or the current handle in use, and determine the main parameter and the secondary parameter in the skin parameter according to the current handle in use; The dynamic change of the display sphere is controlled according to the real-time main parameter and the real-time secondary parameter.

2. The method for controlling the display of the beauty instrument care interface according to claim 1, characterized in that: The morphology of the displayed sphere includes the sphere surface pattern, sphere color and sphere halo; The determining of the shape of the display sphere according to the current nursing mode and / or the currently used handle specifically includes: determining a sphere surface pattern and a sphere color according to the current care mode; Determines the sphere halo according to the currently used handle.

3. The method for controlling the display of the beauty instrument care interface according to claim 2, characterized in that: The care modes include sensitive skin care mode, professional anti-aging mode and brightening and whitening mode; Determining the surface pattern and color of the sphere according to the current care mode specifically includes: If the current care mode is the sensitive skin care mode, the pattern on the surface of the sphere is determined to be a dot matrix and the color of the sphere is gold; If the current care mode is the professional anti-aging mode, the surface pattern of the sphere is determined to be linear stripes and the color of the sphere is purple; If the current care mode is the brightening and whitening mode, the surface pattern of the sphere is determined to be a luminous surface and the color of the sphere is milky white.

4. The method for controlling the display of the beauty instrument care interface according to claim 2, characterized in that: The handles include an infiltration-promoting handle, a lifting handle, a firming handle and an ice compress handle; The determining of the spherical halo according to the currently used handle specifically includes: If the currently used handle is a penetration-enhancing handle, the spherical halo is determined to be photon scattering; If the currently used handle is a lifting handle, the spherical halo is determined to be a streamlined light band; If the currently used handle is a compact handle, the spherical halo is determined to be concentric ripples; If the currently used handle is an ice handle, the spherical halo is determined to be a blue sheet-like light band.

5. The method for controlling the display of the beauty instrument care interface according to claim 1, characterized in that: The skin parameters include moisture, temperature, impedance and elasticity; Determining the primary parameter and the secondary parameter in the skin parameter according to the currently used handle specifically includes: If the handle currently in use is a penetration-enhancing handle, water content is determined as the primary parameter, and temperature, impedance and elasticity are determined as secondary parameters; If the handle currently in use is a lifting handle, elasticity is determined as the primary parameter, and moisture, temperature and impedance are determined as secondary parameters; If the handle currently in use is a compact handle, impedance is determined as the primary parameter, and moisture, temperature, and elasticity are secondary parameters; If the handle currently in use is an ice compress handle, temperature is determined as the primary parameter, and moisture, impedance and elasticity are determined as secondary parameters.

6. The method for controlling the display of the beauty instrument care interface according to claim 1, characterized in that: The controlling the dynamic change of the display sphere according to the real-time primary parameter and the real-time secondary parameter specifically includes: Calculate the dynamic coefficient according to the real-time primary parameter and the real-time secondary parameter: k=aZ+bY1+bY2+bY3; Wherein, Z is the real-time main parameter, Y1, Y2, and Y3 are real-time secondary parameters, a and b are weight coefficients, where a is greater than b, and a+3b=1; The dynamic change of the display sphere is controlled according to the dynamic coefficient.

7. The method for controlling the display of the beauty instrument care interface according to claim 6, characterized in that: The morphology of the display sphere includes a sphere surface pattern, and the sphere surface pattern includes a dot matrix, linear stripes and a luminous surface; The controlling the dynamic change of the display sphere according to the dynamic coefficient specifically includes: When the spherical surface pattern is a dot array, the real-time dot diameter and the real-time dot pitch of the dot array are determined according to the dot diameter range, the dot pitch range and the dynamic coefficient; When the spherical surface pattern is linear stripes, the real-time line thickness and real-time line spacing of the linear stripes are determined according to the line thickness range, the line spacing range and the dynamic coefficient; When the spherical surface pattern is a luminous surface, the real-time transparency and real-time brightness of the luminous surface are determined according to the transparency range, the brightness range and the dynamic coefficient.

8. The method for controlling the display of the beauty instrument care interface according to claim 6, characterized in that: The morphology of the displayed sphere includes the color of the sphere; The controlling the dynamic change of the display sphere according to the dynamic coefficient specifically includes: Determining the real-time vividness of the color of the sphere according to the color vividness range and the dynamic coefficient; Determining the real-time saturation of the sphere color according to the color saturation range and the dynamic coefficient; A real-time sphere color is determined according to the real-time vividness and the real-time saturation.

9. The method for controlling the display of the beauty instrument care interface according to any one of claims 1 to 8, characterized in that: The shape of the displayed sphere includes a spherical halo, and a moving light spot is arranged on the spherical halo; The method further comprises: Get the real-time position of the handle; The real-time position of the moving light spot is determined according to the real-time position of the handle.

10. A storage medium, characterized in that: The storage medium stores computer instructions, and when a computer executes the computer instructions, it is used to execute the control method for displaying a beauty instrument care interface as described in any one of claims 1 to 9.

11. An electronic device, characterized in that: comprising at least one processor; and, a memory communicatively connected to the at least one processor; wherein, The memory stores instructions that can be executed by the at least one processor, and the instructions are executed by the at least one processor so that the at least one processor can execute the control method for displaying a beauty instrument care interface as described in any one of claims 1-9.