Entity display method and device, electronic equipment, medium and product
By displaying the physical cross-sections of clothing and mannequins on the display interface, the problem of insufficient flexibility in existing methods is solved, enabling flexible measurement and adjustment of the distance between the mannequin and clothing in clothing design, and improving design efficiency.
Patent Information
- Application Number
- CN202410448584.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-04-12
- Publication Date
- 2025-10-21
AI Technical Summary
Existing physical display methods rely on mannequins without arms or legs, which lack flexibility and require additional effort to create models to view the distance between key parts of the garment and the mannequin's surface.
By displaying the physical cross-sections of clothing and mannequins on the display interface, the outlines of the mannequins and clothing are shown, measurement and adjustment functions are provided, and users can view the distance between the mannequins and clothing in real time.
It improves the flexibility and accuracy of measuring the distance between clothing and the mannequin surface, reduces reliance on mannequin making, and increases the efficiency of clothing design.
Smart Images

Figure CN120822255A_ABST
Abstract
Description
Technical Field
[0001] This specification relates to the field of clothing production technology, and in particular to a physical display method, device, electronic device, medium and product. Background Art
[0002] When developing clothing, fashion designers, pattern makers and other designers need to check the distance between key parts of the clothing, such as the sleeves and the bottom of the skirt, and the surface of the model to ensure that the clothing is cut appropriately.
[0003] Currently, the most common method for displaying objects is to use a model without arms or legs, and then examine the spatial relationship between the garment and the model through the cuffs or skirt bottom. However, this method is not flexible and requires additional effort to create each model based on the key parts to be examined. Summary of the Invention
[0004] To overcome the problems existing in the related art, this specification provides a physical display method, device, electronic device, medium and product.
[0005] According to a first aspect of any embodiment of this specification, there is provided a method for displaying an entity, the method comprising:
[0006] Displaying a cross-section of an entity on a display interface, the entity comprising: clothing and a model trying on the clothing;
[0007] At least one of a model outline and a clothing outline is displayed on the cross section, wherein the model outline is the outline of the model on the cross section, and the clothing outline is the outline of the clothing on the cross section.
[0008] According to a second aspect of any embodiment of this specification, a physical display device is provided, the device comprising:
[0009] A cross-section display module is configured to display a cross-section of an entity on a display interface, wherein the entity includes: clothing and a model trying on the clothing; the cross-section includes: a model outline of the model on the cross-section and a clothing outline of the clothing on the cross-section;
[0010] A contour display module is used to display the model contour and the clothing contour on the cross section.
[0011] According to a third aspect of any embodiment of this specification, there is provided an electronic device, including:
[0012] processor;
[0013] a memory for storing processor-executable instructions;
[0014] The processor implements the method described in any embodiment of this specification by running the executable instructions.
[0015] According to a fourth aspect of any embodiment of this specification, a computer-readable storage medium is provided, on which computer instructions are stored. When the instructions are executed by a processor, the steps of the method described in any embodiment of this specification are implemented.
[0016] According to a fifth aspect of any embodiment of this specification, a computer program product is provided, on which a computer program / instruction is stored, and when the computer program / instruction is executed by a processor, the steps of the method described in any embodiment of this specification are implemented.
[0017] The technical solutions provided by the embodiments of this specification may have the following beneficial effects:
[0018] According to the above embodiments, by displaying a cross-section of an entity including clothing and a model on a display interface, displaying at least one of the model outline and the clothing outline on the cross-section, and when only the model outline or the clothing outline is displayed on the cross-section, the distance information between the model outline and the clothing outline is obtained. When the model outline and the clothing outline are displayed on the cross-section, the user is supported to view the distance between the model outline and the clothing outline, so that the user can view the spatial relationship between any part of the clothing and the model in real time, thereby obtaining the margin of each part of the clothing, and improving the flexibility of measuring the distance between the clothing and the model surface.
[0019] It should be understood that the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the present disclosure. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and, together with the description, serve to explain the principles of the present application.
[0021] Figure 1 is a schematic diagram of a fitting model according to an exemplary embodiment of the present specification;
[0022] Figure 2 is a flowchart of an entity display method according to an exemplary embodiment of this specification;
[0023] Figure 3 is a schematic diagram of a display interface according to an exemplary embodiment of this specification;
[0024] Figure 4 is a flowchart of a clothing adjustment method according to an exemplary embodiment of the present specification;
[0025] Figure 5is a schematic diagram of a cross section before a change operation is performed according to an exemplary embodiment of this specification;
[0026] Figure 6 is a schematic diagram of a cross section after a change operation according to an exemplary embodiment of this specification;
[0027] Figure 7 is a schematic diagram of an entity shown in this specification according to an exemplary embodiment;
[0028] Figure 8 is a schematic diagram of a screenshot corresponding to a front-view positioning according to an exemplary embodiment of this specification;
[0029] Figure 9 is a schematic diagram of a screenshot corresponding to a top-down positioning according to an exemplary embodiment of this specification;
[0030] Figure 10 is a schematic diagram of a screenshot corresponding to a side-view positioning according to an exemplary embodiment of this specification;
[0031] Figure 11 is a schematic diagram of a distance value and a line segment according to an exemplary embodiment of this specification;
[0032] Figure 12 is a flowchart of another entity display method according to an exemplary embodiment of this specification;
[0033] Figure 13 is a schematic diagram of a waist center point according to an exemplary embodiment of this specification;
[0034] Figure 14 is a schematic diagram of an abdominal center point according to an exemplary embodiment of this specification;
[0035] Figure 15 is a schematic structural diagram of an electronic device according to an exemplary embodiment of this specification;
[0036] Figure 16 This is a block diagram of a physical display device according to an exemplary embodiment of the present specification. DETAILED DESCRIPTION
[0037] Exemplary embodiments will be described in detail herein, with examples illustrated in the accompanying drawings. In the following description, when referring to the drawings, identical numerals in different figures represent identical or similar elements unless otherwise indicated. The embodiments described in the following exemplary embodiments are not intended to represent all embodiments consistent with this specification. Rather, they are merely examples of apparatus and methods consistent with certain aspects of this specification, as detailed in the appended claims.
[0038] The terms used in this specification are for the purpose of describing specific embodiments only and are not intended to limit this specification. As used in this specification and the appended claims, the singular forms "a," "an," "the," and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. It should also be understood that the term "and / or" as used herein refers to and encompasses any and all possible combinations of one or more of the associated listed items.
[0039] It should be understood that although the terms first, second, third, etc. may be used in this specification to describe various information, such information should not be limited to these terms. These terms are merely used to distinguish information of the same type from one another. For example, first information may also be referred to as second information, and similarly, second information may also be referred to as first information without departing from the scope of this specification. Depending on the context, the term "if" as used herein may be interpreted as "when," "when," or "in response to determining."
[0040] In the actual clothing development process, the legs, arms and other parts of the fake model need to be removed. This makes it easier for designers to check the distance between key parts and the model's surface through the cuffs or the bottom of the skirt. Figure 1 A schematic diagram of a fitting model is shown. Designers can remove the model's legs and check the distance between the model's legs and the garment from under the skirt.
[0041] However, this physical display method is not flexible enough and requires additional effort to produce each model according to the key parts of the clothing to be viewed.
[0042] In order to solve the above problems, the embodiments of this specification propose a physical display method. To further illustrate this specification, the following embodiments are provided:
[0043] See also Figure 2 , Figure 2 This is a flowchart illustrating a method for displaying an entity according to an exemplary embodiment of this specification. This method can be applied to design software, which can be installed on a terminal device such as a computer or tablet. Design software includes programs such as 3D modeling software and clothing design systems that provide functions such as clothing design and clothing production.
[0044] The entity display method may include the following steps:
[0045] Step 202: Displaying a cross-section of an entity on a display interface, the entity including: clothing and a model trying on the clothing.
[0046] In this step, users can import the entity into the design software, which will display a cross-section of the entity on the design software's display interface. Using the cross-section function, the entity can be cut off, and only one side of the entity is displayed on the cross-section, making it easier for users to see the spatial relationship between the model and the garment.
[0047] If no entity has been imported into the display interface, the design software can generate a section with a side length of the preset initial length at the origin of the display interface.
[0048] The entities include at least: clothing, and models trying on clothing. The entities may include one model and the clothing the model tries on, or may include multiple models and the clothing the models try on.
[0049] A section is used to display cross-sections of clothing and models. A section can be a semi-transparent panel, and one or more sections can be displayed within the interface. The initial size of a section can be set based on the side length of the entity's bounding box. The section must cover all models within the entity, and the initial center point of the section can be set at the entity's center point.
[0050] For example, the design software can add a preset length to the side length of the cube bounding box as the side length of the cross section, where the preset length is, for example, 30 cm, 50 cm, etc.; it can also be set according to the length, width and other data of the clothing; the initial size and shape of the cross section can also be customized by the user, and the initial size and shape of the cross section are not restricted.
[0051] Furthermore, upon detecting a user triggering a cross-section display mode, the design software determines whether a historical position exists. If so, the cross-section is displayed at that historical position on the display interface. If not, the cross-section is displayed at the center point of the entity.
[0052] Among them, the cross-sectional view display mode is a mode in the design software that has a distance measurement function. The design software may only include the cross-sectional view display mode, or may include other modes with functions such as adjusting clothing and comparing contours.
[0053] If the design software only includes a cross-section display mode, the user's triggering operation for the cross-section display mode may be to start the design software in cross-section display mode. Upon detecting that the user has started the design software in cross-section display mode, the design software searches for the most recent historical location of the cross-section and displays the cross-section at the historical location on the display interface.
[0054] If the design software includes more than one cross-section display mode, the user's triggering operation for the cross-section display mode may be switching from another mode to the cross-section display mode, or may be launching the design software into the cross-section display mode. For example, upon detecting that the user has switched from another mode to the cross-section display mode, the design software searches for the most recent historical location of the cross-section and displays the cross-section at that historical location on the display interface.
[0055] Entities and sections can also correspond to each other, with the design software recording the locations of the sections corresponding to different entities. When searching for the most recent historical location of a section, the design software can also determine the most recent historical location of the section corresponding to that entity based on the entity displayed on the interface.
[0056] As described above, by detecting the user's triggering operation on the cross-sectional view display mode, the cross-section is displayed at the most recent historical position of the cross-section in the display interface, so that after the user modifies the clothing, model, etc., the cross-sectional view display mode can be entered to quickly restore the cross-section to the last historical position, without the user having to repeatedly adjust the position of the cross-section, thereby improving the speed of measuring distance.
[0057] Step 204: Display at least one of a model outline and a clothing outline on the cross section, wherein the model outline is the outline of the model on the cross section, and the clothing outline is the outline of the clothing on the cross section.
[0058] In this step, the design software displays at least one of the model's outline and the garment's outline on the cross section, so that the user can check the garment's margin based on the at least one of the displayed model's outline and the garment's outline.
[0059] The design software displays the model's outline in cross-section and can also display the distance information between the model's outline points and the garment.
[0060] The design software measures the distance between the model's contour points and the clothing, and displays the distance information between the model's contour points and the clothing on the cross-section in the display interface through numerical values, the style of the model's contour, etc., so that the user can obtain the distance between the model's contour and the clothing contour.
[0061] The model contour is the contour line corresponding to the part of the model cut by the cross section, such as the leg contour, waist contour, etc. The model contour point is a position point on the model contour.
[0062] Distance information includes the distance between a model's outline point on a cross-section and a garment. The distance between a model's outline point and a garment can be the closest distance between the model's outline point and the garment, or it can be the distance between the model's outline point and any point on the garment's outline. Distance information can be displayed on the cross-section or in a designated area of a display interface, and this is not limited in this embodiment of the present specification.
[0063] Alternatively, the design software displays the garment outline in cross-section and can also display distance information between the garment outline points and the model.
[0064] The design software measures the distance between the clothing outline points and the model, and displays the distance information between the clothing outline points on the cross section and the model in the display interface through numerical values, clothing outline styles, etc., so that the user can obtain the distance between the model outline and the clothing outline.
[0065] The garment contour is the contour line corresponding to the garment part cut by the cross section on the cross section, such as the sleeve contour, skirt bottom contour, etc. The garment contour point is the position point on the garment contour.
[0066] Distance information includes: the distance between a garment contour point on a cross section and the model. The distance between a garment contour point and the model can be the closest distance between the garment contour point and the model, or the distance between the garment contour point and any point on the model's contour.
[0067] Alternatively, the design software displays the model and garment outlines on a cross-section, allowing the user to determine the distance between the model and garment outlines by connecting lines, etc. Different line styles, such as color and thickness, can be used on the cross-section to distinguish the garment outline from the model outline.
[0068] The design software measures the distance between the garment outline points and the model outline points, and displays the distance information between the garment outline points and the model outline points on the cross section in the display interface through numerical values, model outlines, and garment outline styles.
[0069] If the entity includes multiple models, the cross section can simultaneously capture multiple models and the clothes tried on by the multiple models, and at least one of the model outlines and clothing outlines corresponding to the multiple models can be displayed in the cross section.
[0070] To further illustrate the entities and interfaces in the display interface, Figure 3 A schematic diagram of a display interface is shown. Figure 3As shown, the display interface 30 of the design software exemplarily includes: entity 301, cross section 302, distance ladder 303, and garment cross section button 304. Taking the cross section 302 intercepting the waist position of entity 301 as an example, cross section 302 includes: the model outline and garment outline of the waist, and the model outline and garment outline of the arm.
[0071] The clothing cross-section view button 304 is a button corresponding to the cross-section view display mode. The user can trigger the cross-section view display mode by clicking the clothing cross-section view button 304. The distance ladder 303 will be described in detail in subsequent embodiments.
[0072] It is understandable that Figure 3 The display interface 30 shown is only an example, and other display interfaces may also be used. As long as the cross-sections and entities in the display interface can implement the methods described in the embodiments of this specification, the embodiments of this specification do not impose any restrictions on this.
[0073] The design software can also support users to adjust the clothing in the entity. Figure 4 A flowchart of a clothing adjustment method is shown, which may include the following steps:
[0074] Step 402: Display at least one of a model outline and a clothing outline on a cross section.
[0075] In this step, the design software may display at least one of the model's outline and the garment's outline on the cross section, so that the user can check the distance between the model and the garment.
[0076] Step 404: Determine whether the user is satisfied with the clothing.
[0077] In this step, the design software can determine whether the user is satisfied with the garment based on whether the user has made adjustments to the garment. If the user has made adjustments to the garment, the user is dissatisfied with the garment; if the user has not made any adjustments to the garment, the user is satisfied with the garment.
[0078] If the user is not satisfied with the clothing, the process continues with step 406 .
[0079] If the user is satisfied with the clothing, step 408 is executed.
[0080] Step 406: The design software receives the user's adjustment operation on the clothing and makes corresponding adjustments to the clothing.
[0081] Step 408: Obtain clothing that satisfies the user.
[0082] In this step, the design software obtains the clothing that the user considers satisfactory after measuring the distance.
[0083] Furthermore, the design software can display the adjusted garment outline on the cross section in response to detecting the user's adjustment operation on the garment. The design software can also measure the distance between the model's outline and the adjusted garment outline and update the distance information displayed on the display interface.
[0084] Adjustments are performed on the garment's form, for example, adjusting parameters such as the collar, cuffs, and trouser legs, or modifying the garment's fabric and texture. Adjustments can be made to the actual garment in cross-section view mode or in garment simulation mode, where the adjustment function is enabled. There are no restrictions on where adjustments can be made.
[0085] As described above, by displaying the adjusted clothing outline on the cross section in response to detecting the user's adjustment operation on the clothing, the user is supported to view the distance between the model and the clothing while adjusting the clothing, thereby improving the speed of clothing modification.
[0086] Furthermore, the user can perform transformation operations on the cross section using transformation tools such as a positioning ball and a manipulator, or can directly use a mouse to perform transformation operations such as translation, rotation, and scaling on the cross section. In response to detecting the user's transformation operation on the cross section, the design software displays at least one of the model's outline and the garment outline on the cross section after the transformation.
[0087] The design software can also measure the distance between the model outline and the clothing outline on the transformed cross-section, and update the distance information displayed in the display interface.
[0088] The rotation range of the cross section can be 0° to 360°, and the transformation operation can also include geometric transformation methods such as flipping and stretching.
[0089] To further illustrate the transformation operation, Figure 5 FIG. 1 shows a schematic diagram of a cross section before a change operation is performed. Figure 5 As shown, the cross section horizontally cuts the waist of the model in the entity. The user can adjust the positioning ball 501 to perform transformation operations such as translation, rotation, and scaling on the cross section.
[0090] Figure 6 FIG. 1 shows a schematic diagram of a cross section after a change operation. Figure 6 As shown, after the user translates and rotates the cross-section by adjusting the positioning ball 501, the cross-section becomes a cross-section passing through the left armpit point and rotated by an angle of 45°. In response to detecting the user's translation and rotation of the cross-section, the design software displays the model's outline and the garment outline on the transformed cross-section.
[0091] As described above, by responding to detecting the user's transformation operation on the cross-section, at least one of the model outline and clothing outline on the transformed cross-section is displayed, supporting the user to view the distance between the model and clothing intercepted by the cross-section in real time through the transformed cross-section, thereby further improving the flexibility of measuring distance.
[0092] The entity display method of this embodiment displays a cross-section of an entity including clothing and a model on a display interface, displays at least one of the model outline and the clothing outline on the cross-section, obtains distance information between the model outline and the clothing outline when only the model outline or the clothing outline is displayed on the cross-section, and supports users to view the distance between the model outline and the clothing outline when the model outline and the clothing outline are displayed on the cross-section, so that the user can view the spatial relationship between any part of the clothing and the model in real time, thereby obtaining the margin of each part of the clothing, and improving the flexibility of measuring the distance between the clothing and the model surface.
[0093] In the aforementioned embodiment, at least one of displaying a model outline and a garment outline on a cross-section is described to allow the user to view the distance between the model and the garment. In the following embodiment, a more detailed description will be given of how to display a cross-section of an entity on a display interface, which can be applied to any of the above embodiments.
[0094] In one embodiment, a user selects a preset location for a cross section by, for example, clicking a button corresponding to a preset location, clicking a location point corresponding to a preset location, or entering a unique identifier corresponding to a preset location on a display interface. In response to detecting the user's selection of a preset location for a cross section, the design software resets the cross section's position according to the preset location and displays the preset cross section corresponding to the preset location on the display interface.
[0095] The preset location can be a positioning point and rotation angle preset in the design software, which can be used to define the location of the preset section. The preset section is the section located at the position specified by the positioning point and rotation angle.
[0096] The anchor point defines the point through which the section passes. This anchor point can be any point on the entity or in the display interface. The rotation angle is the angle of rotation of the section along the X, Y, and Z axes. The X axis represents the horizontal direction of the entity, the Y axis represents the vertical direction of the entity, and the Z axis represents the depth direction of the entity.
[0097] Taking the selection operation of clicking the button corresponding to the preset positioning as an example, the display interface displays a front view positioning button, a top view positioning button, and a side view positioning button. Figure 7A schematic diagram of an entity is shown. The display interface displays an entity including a model and clothing. For example, the display interface also includes a front view positioning button 701, a top view positioning button 702, and a side view positioning button 703. In the design software, the preset positioning can be set to front view positioning, top view positioning, and side view positioning.
[0098] Among them, the positioning point of the front view positioning is the center point of the entity, and the rotation angle of the front view positioning is 0° on the X axis, Y axis and Z axis; the positioning point of the top view positioning is the center point of the entity, and the rotation angle of the top view positioning is 0° on the X axis and Z axis, and 90° on the Y axis; the positioning point of the side view positioning is the center point of the entity, and the rotation angle of the side view positioning is 0° on the X axis and Y axis, and 90° on the Z axis.
[0099] Figure 8 A schematic diagram of a screenshot corresponding to the orthographic positioning is shown. If the user clicks the orthographic positioning button 701, the design software, in response to detecting the user's selection of the orthographic positioning of the section, sets the section's positioning point to the center point of the solid, sets the section's rotation angles along the X, Y, and Z axes to 0°, and displays the orthographic preset section 801 corresponding to the orthographic positioning on the display interface.
[0100] Figure 9 A schematic diagram of a screenshot corresponding to a top-down positioning is shown. If a user clicks the top-down positioning button 702, the design software, in response to detecting the user's selection operation for the top-down positioning of a section, sets the section's positioning point to the center point of the entity, sets the section's rotation angles on the X and Z axes to 0°, and on the Y axis to 90°, and displays a top-down preset section 901 corresponding to the top-down positioning on the display interface.
[0101] Figure 10 A schematic diagram of a screenshot corresponding to a side view positioning is shown. If a user clicks the side view positioning button 703, the design software, in response to detecting the user's selection of the side view positioning of the section, sets the section's positioning point to the center point of the solid, sets the section's rotation angles on the X and Y axes to 0°, and on the Z axis to 90°, and displays a side view preset section 1001 corresponding to the side view positioning on the display interface.
[0102] As described above, in response to detecting the user's selection operation for the preset positioning of the section, the preset section corresponding to the preset positioning is displayed on the display interface, without the user having to repeatedly adjust the section to the position corresponding to the preset positioning, helping the user to quickly display the preset sections corresponding to commonly used positioning points and rotation angles, thereby improving the user's usage experience.
[0103] Furthermore, the user can manually enter the set positioning point and rotation angle in the design software, or directly set the current positioning point and rotation angle of the cross section as the positioning point and rotation angle in the preset positioning. The design software receives the positioning point and rotation angle set by the user and stores the positioning point and rotation angle as the preset positioning.
[0104] The design software can set the selection operation corresponding to the user-defined preset positioning through buttons, shortcut keys, display positioning points, etc. In response to detecting the user's selection operation on the customized preset positioning, the design software displays the preset section corresponding to the customized preset positioning on the display interface.
[0105] As described above, by receiving the positioning point and rotation angle set by the user, the positioning point and rotation angle are stored as a preset positioning, and the user is supported to customize the positioning point and rotation angle of the preset positioning, thereby further improving the user experience.
[0106] In the aforementioned embodiment, a preset screenshot corresponding to a preset position is displayed on the display interface. Since the design process often requires measuring clothing at specific angles or locations, the following embodiment provides a more detailed description of how to adsorb a cross-section to a specific angle or location to facilitate user measurement operations. This description is applicable to any of the above embodiments.
[0107] In one embodiment, after the user performs a transformation operation such as translation or rotation on a cross-section, the design software can measure the difference between the cross-section's positioning parameters and the standard positioning. If the difference corresponding to the cross-section is detected to be less than or equal to a correction threshold, the cross-section's position is adjusted to the position corresponding to the standard positioning.
[0108] The standard positioning includes at least one of the following: a positioning point and a rotation angle. The difference represents the difference between the positioning parameters of the section and the standard positioning. The positioning parameters are the positioning point that the section currently passes through and the rotation angle that the section currently holds.
[0109] If the standard positioning includes a positioning point, the difference is the projected distance between the positioning point and the section; if the standard positioning includes a rotation angle, the difference is the difference between the rotation angle of the section and the rotation angle of the standard positioning.
[0110] The correction threshold determines whether a section should be corrected to the position corresponding to the standard positioning. The user can set the correction threshold. The standard positioning is one or more pre-defined positioning parameters. Positioning parameters are used to characterize the position of the section.
[0111] For example, the default standard positioning setting is a 45° rotation angle on the X axis, with a correction threshold of 2°. If the difference between the X-axis rotation angle and 45° after the transformation operation is within 2°, the design software adjusts the section to the 45° rotation angle on the X axis.
[0112] For example, in the preset standard positioning, the positioning point is the model's left armpit point, and the correction threshold is 2 cm. If the cross-section after the transformation operation is within 2 cm of the projected distance of the model's left armpit point, the design software will translate the cross-section to pass through the model's left armpit point.
[0113] The preset standard positioning can also include a rotation angle of 45° on the X-axis and a positioning point as the left armpit point. If the projected distance between the cross section and the left armpit point is within 2 cm and the difference between the rotation angle on the X-axis and 45° is within 2°, the design software will adjust the cross section to pass through the left armpit point and the rotation angle on the X-axis is 45°.
[0114] As described above, when it is detected that the difference corresponding to the cross section is less than or equal to the correction threshold, the position of the cross section is adjusted to the position corresponding to the standard positioning. The cross section is quickly and accurately corrected to the position corresponding to the standard positioning through standard positioning, without the user having to manually adjust the positioning parameters of the cross section, thereby improving the speed of measuring distance.
[0115] Furthermore, the user may perform a storage operation on the positioning parameters of the cross section, and the design software stores the positioning parameters as a standard positioning in response to detecting the user's storage operation on the positioning parameters.
[0116] The storage operation may include clicking a storage button corresponding to the positioning parameter, inputting the positioning parameter, and the like.
[0117] As described above, in response to detecting a user's storage operation on the positioning parameters, the positioning parameters are stored as standard positioning, which supports the user to customize the standard positioning required for correction, thereby further improving the user experience.
[0118] In the aforementioned embodiment, it is introduced that the position of the cross section is adjusted to the position corresponding to the standard positioning. In the following embodiment, how to display the distance information will be described in more detail and can be applied to any of the above embodiments.
[0119] In one embodiment, in response to detecting a user's selection operation on a model contour point, the design software may calculate the closest distance between the model contour point and a clothing contour point on the clothing contour on a cross section, and display the distance value between the model contour point and the clothing contour point on the clothing contour in numerical form.
[0120] The design software may also display the distance value between the garment contour point and the model contour point on the model contour in numerical form in response to detecting the user's selection operation on the garment contour point.
[0121] Distance information includes a distance value. The distance value represents the closest distance between a model's outline point and a garment's outline point on a cross-section. The distance value can be displayed on the cross-section or on the display interface. The unit of the distance value can retain a preset number of decimal places, which must be an integer greater than or equal to 0. The display location and unit of the distance value are not restricted.
[0122] The clothing contour point on the clothing contour can be the closest point that intersects the clothing contour in the normal direction of the model contour point, or can be any point on the clothing contour selected by the user.
[0123] The design software can treat the distance value as temporary data and not store the distance value, thereby reducing the storage pressure of the design software; the distance value and the clothing contour point corresponding to the distance value can also be stored to facilitate users to view the distance value before and after clothing adjustment.
[0124] The selection operation of the model contour point can be a single-click operation on the model contour point to display the distance value between the model contour point and the clothing contour point; it can also be a drag operation on the model contour point on the model contour to display the distance value between the model contour point at the dragging position and the clothing contour point in real time; it can also be a selection operation on the model contour point to display the distance value between one or more selected model contour points and the clothing contour point. The embodiments of this specification do not limit this.
[0125] If the selection operation for the model contour point is a single-click operation, the design software responds to detecting the user's single-click operation on other model contour points, and the distance value corresponding to the last model contour point disappears, and the distance value corresponding to the closest distance between the new model contour point and the clothing contour point is displayed.
[0126] If the selection operation for the model contour point is a drag operation, the design software responds to detecting the user's drag operation on other model contour points, and the distance value corresponding to the model contour point at the last drag position disappears, and the distance value corresponding to the closest distance between the model contour point at the new drag position and the clothing contour point is displayed.
[0127] As described above, by displaying the distance value between the model contour point and the clothing contour point in response to detecting the user's selection operation on the model contour point, the user can quickly and accurately view the distance between the model contour point in the model contour and the clothing contour point in the clothing contour, thereby improving the accuracy of the distance measurement.
[0128] Furthermore, a line segment corresponding to the closest distance between the model's outline point and the garment's outline can be displayed on the cross section. The line segment is the closest measurement line between the model's outline point and the garment's outline point, and is used to indicate the model's outline point and the garment's outline point corresponding to the distance value.
[0129] If the selection operation for the model contour point is a single-click operation, the design software responds to detecting the user's single-click operation on other model contour points, and the line segment corresponding to the last closest distance to the model contour point disappears, and the line segment corresponding to the closest distance between the new model contour point and the clothing contour point is displayed.
[0130] If the selection operation for the model contour point is a drag operation, the design software responds to detecting the user's drag operation on other model contour points, and the line segment corresponding to the model contour point at the last drag position disappears, and the line segment corresponding to the closest distance between the model contour point at the new drag position and the clothing contour point is displayed.
[0131] If the selection operation for the model contour point is a selection operation, a line segment corresponding to the shortest distance between the selected one or more model contour points and the corresponding clothing contour point may be displayed on the cross section.
[0132] See also Figure 11 , Figure 11 This is a schematic diagram illustrating distance values and line segments according to an exemplary embodiment of this specification. The cross section includes: a model outline 1101, a first garment outline 1102, a second garment outline 1103, a model outline point 1104, a garment outline point 1105, a distance value 1106, and a line segment 1107. First garment outline 1102 is the garment outline closest to the model in the cross section, while second garment outline 1103 is the garment outline farther from the model in the cross section.
[0133] Taking the clothing contour point as the closest point intersecting with the clothing contour in the normal direction of the model contour point as an example, the user selects the model contour point 1104. In response to detecting the user's selection operation on the model contour point 1104, the design software selects the closest clothing contour point 1105 intersecting with the first clothing contour 1102 and the second clothing contour 1103 in the normal direction of the model contour point 1104, and measures the distance between the model contour point 1104 and the clothing contour point 1105.
[0134] The design software displays a distance value 1106 between the model outline point 1104 and the garment outline point 1105 on the cross section, which is 5.12 cm. A line segment 1107 between the model outline point 1104 and the garment outline point 1105 can also be displayed on the cross section.
[0135] As described above, by displaying the line segment corresponding to the closest distance between the model contour point and the clothing contour point on the cross section on the cross section, the user is assisted in viewing the distance between the model contour point and the clothing contour point corresponding to the distance value.
[0136] Furthermore, if the user transforms the cross section, the distance value and line segment disappear in response to the design software detecting the user's transformation operation. The design software then remeasures and displays the distance value and line segment corresponding to the closest distance between the model's contour point and the garment's contour point on the transformed cross section.
[0137] As described above, in response to detecting the user's transformation operation on the cross section, the distance values and line segments disappear, which facilitates updating and displaying the distance values and line segments corresponding to the model contour points on the transformed cross section.
[0138] In one embodiment, the design software displays different distance patterns on the cross section for different model contour points on the model contour, and represents the distances corresponding to the model contour points through the distance patterns corresponding to the different model contour points on the model contour.
[0139] The distance information includes: distance style. Different distance styles indicate different distances corresponding to the model's contour points. The distance style is used to identify the closest distance between the model's contour points and the clothing's contour points, and can be the color, thickness, etc. of the line.
[0140] It is understandable that the design software may display only the distance value, or only the distance pattern, or may display both the distance value and the distance pattern at the same time, and the embodiments of this specification do not impose any limitation on this.
[0141] Please continue reading Figure 11 For example, using the distance pattern as color, the design software can simultaneously display the distance value and the distance pattern. Different model outline points on the model outline 1101 are displayed in different colors on the cross section, representing the distances corresponding to the different model outline points. Model outline point 1104 can also display the blue color corresponding to the distance pattern based on the distance pattern.
[0142] The design software can also display different distance patterns for different clothing outline points on the cross section. Different distance patterns indicate different corresponding distances between clothing outline points. The distance patterns corresponding to different clothing outline points on the clothing outline represent the corresponding distances between clothing outline points.
[0143] As described above, different model contour points on the model contour are displayed in different distance styles on the cross section. Since some clothing does not require precise distance values during the design process, for example, the two sleeves do not need to be completely symmetrical or exactly the same, different distance styles are used to indicate that the distances corresponding to the model contour points are different, which can improve the speed of measuring distances.
[0144] Furthermore, the design software obtains the distances corresponding to different model contour points on the model contour, searches for the distance pattern corresponding to the distance ladder based on the distance ladder, and displays each model contour point on the model contour in the distance pattern corresponding to each model contour point.
[0145] The distance ladder is used to represent the range of distance. The range and distance style corresponding to the distance ladder can be preset by the design software or customized by the user.
[0146] For example, the distance pattern corresponding to the distance steps of 0-2.5 cm is blue, and the distance pattern corresponding to the distance steps of 2.5 cm-6.3 cm is green.
[0147] The design software can also obtain the distances corresponding to different points on the garment outline. Based on the distance ladder, the software searches for the distance pattern corresponding to the distance ladder and displays each point on the garment outline in the distance pattern corresponding to each point.
[0148] As described above, by obtaining the distance corresponding to the model contour point for different model contour points on the model contour, querying the distance style corresponding to the distance ladder based on the distance ladder, and displaying the model contour point as the corresponding distance style, different distance styles can be displayed for model contour points in different distance ranges, so that the user can determine the distance range corresponding to the model contour point by viewing the model contour, thereby further improving the speed of measuring distance.
[0149] Furthermore, the user can input the set distance ladder and the distance style corresponding to the distance ladder through tools such as a text box and a color picker. The design software receives the distance ladder and the distance style corresponding to the distance ladder set by the user, and displays the distance styles corresponding to different distance ladders on the display interface.
[0150] Please continue reading Figure 3 After receiving the distance ladder set by the user and the distance style corresponding to the distance ladder, the design software displays the distance ladder 303 on the display interface, and the distance ladder 303 displays the distance styles corresponding to different distance ladders.
[0151] As described above, by receiving the distance steps set by the user and the distance styles corresponding to the distance steps, the user is supported to customize the distance steps and distance styles; the distance styles corresponding to different distance steps are displayed on the display interface, which makes it convenient for the user to compare the distance styles corresponding to different distance steps, determine the distance range corresponding to the model contour point, and improve the user experience.
[0152] To further illustrate the process of the entity display method, Figure 12 A flow chart of another entity display method is shown. Taking the display of a model outline and a clothing outline on a cross section as an example, the entity display method may include the following steps:
[0153] Step 1202: When a trigger operation of the cross-sectional view display mode by the user is detected, the cross-sectional view is displayed at the historical position of the display interface.
[0154] In this step, after the user enters the cross-section display mode, if the cross section has a historical position, the design software displays the cross section at the historical position on the display interface.
[0155] Step 1204: When it is detected that the difference value corresponding to the cross section is less than or equal to the correction threshold, the position of the cross section is adjusted to the position corresponding to the standard positioning.
[0156] In this step, the user transforms the cross section. When the design software detects that the difference corresponding to the cross section is less than or equal to the correction threshold, it adjusts the position of the cross section to the position corresponding to the standard positioning.
[0157] Step 1206: Different model contour points on the model contour are displayed in different distance styles on the cross section.
[0158] In this step, the design software displays different distance patterns on the cross section for different model contour points on the model contour according to the distance steps preset by the user and the distance patterns corresponding to the distance steps.
[0159] Step 1208: In response to detecting the user's selection operation on the model contour point, display the distance value and line segment between the model contour point and the clothing contour point.
[0160] In this step, the design software displays the distance values and line segments between the model contour points and the clothing contour points on the cross section in response to detecting the user's selection operation on the model contour points.
[0161] Step 1210: In response to detecting the user's transformation operation on the cross section, the distance value and the line segment disappear.
[0162] In this step, the design software responds to detecting the user's transformation operations such as translation and rotation of the cross section, and the distance value and line segment disappear.
[0163] Step 1212: In response to detecting the user's adjustment operation on the clothing, display the adjusted clothing outline on the cross section.
[0164] In this step, the design software, in response to detecting the user's adjustment operation on the garment, displays the adjusted garment outline on the cross-section. The display interface may also display the distance values between the model's outline points and the garment outline points on the adjusted garment outline, and display the distance patterns corresponding to the model's outline points and the distance patterns corresponding to the garment outline points on the cross-section.
[0165] Step 1214: In response to detecting the user's transformation operation on the cross section, display the model outline and clothing outline on the transformed cross section.
[0166] In this step, after the user clicks on a section, a positioning ball corresponding to the section is displayed in the display interface. The user uses the positioning ball to transform the section, and the design software responds to the detected transformation operation and displays the model outline and garment outline on the transformed section.
[0167] The display interface can also display the distance values between the model contour points and the clothing contour points on the transformed cross section, and display the distance patterns corresponding to the model contour points and the distance patterns corresponding to the clothing contour points on the transformed cross section.
[0168] Step 1216: In response to detecting the user's selection operation for the preset position of the cross section, the preset cross section corresponding to the preset position is displayed on the display interface.
[0169] In this step, the positioning point and rotation angle received from the user are stored as a preset positioning. In response to detecting the user's selection operation of the preset positioning of the cross section, the preset cross section corresponding to the preset positioning is displayed on the display interface, and the model outline and clothing outline are displayed on the preset cross section.
[0170] For example, the preset positioning point is the waist center point, the preset positioning rotation angle is 0° for the X-axis and Y-axis, and 90° for the Z-axis. Figure 13 A schematic diagram of the waist center point is shown.
[0171] like Figure 13 As shown, the user clicks on the waist center point 1301 of the model, and a preset cross section passing through the waist center point 1301 with the rotation angles of the X axis and the Y axis being 0° and the rotation angle of the Z axis being 90° is displayed on the display interface.
[0172] For example, the distance information corresponding to the model's outline points is displayed on a preset cross-section. The user clicks waist outline point 1302 on the model's outline, and the preset cross-section displays the distance value corresponding to waist outline point 1302 as 2.3 cm. This allows the user to directly check the margin between the skirt and the model's waist from the side.
[0173] For example, the preset positioning point is the center of the abdomen, and the preset positioning rotation angle is 0° for the X-axis, Y-axis, and Z-axis. Figure 14 A schematic diagram of the center point of the abdomen is shown.
[0174] like Figure 14 As shown, the user clicks on the center point 1401 of the abdomen of the model, and a preset cross section passing through the center point 1401 of the abdomen and with a rotation angle of 0° about the X-axis, Y-axis and Z-axis is displayed on the display interface.
[0175] For example, the distance information corresponding to the model's outline points is displayed on a preset cross section. The user clicks on leg outline point 1402 on the model's outline, and the distance value corresponding to leg outline point 1402 is displayed on the preset cross section as 1.3 cm. This allows the user to directly check the margin between the skirt and the model's leg from the back.
[0176] For example, the preset positioning point is the left armpit point, and the preset positioning rotation angle is 45° for the X-axis, 0° for the Y-axis, and 90° for the Z-axis.
[0177] Please continue reading Figure 6 The user clicks the model's left armpit point, and a preset cross-section passing through the left armpit is displayed on the interface, with X-axis rotation angles of 45°, Y-axis rotation angles of 0°, and Z-axis rotation angles of 90°. For example, the preset cross-section displays the corresponding colors of different model points, allowing users to directly check the allowance between the cuff and the model's arm.
[0178] It is understood that the distance patterns in the drawings shown in the above embodiments are based on Figure 3 The distance pattern is displayed according to the distance ladder 303 shown, and the distance pattern can also be displayed according to other distance ladders, which is not limited in the embodiments of this specification.
[0179] Figure 15 This is a schematic diagram of the structure of an electronic device according to an exemplary embodiment of this specification. The electronic device may be, for example, a mobile phone, a computer, a digital broadcast terminal, a messaging device, a game console, a tablet device, a personal digital assistant, a server, a smart home appliance, etc. Figure 15At the hardware level, the electronic device includes a processor 1502, an internal bus 1504, a network interface 1506, a memory 1508, and a non-volatile memory 1510. Of course, it may also include hardware required for other services. The processor 1502 reads the corresponding computer program from the non-volatile memory 1510 into the memory 1508 and then runs it, forming a physical display device at the logical level. Of course, in addition to software implementation, this application does not exclude other implementation methods, such as logic devices or a combination of software and hardware, etc., that is, the execution subject of the following processing flow is not limited to each logic unit, but can also be hardware or logic devices.
[0180] Figure 16 This is a block diagram of a physical display device according to an exemplary embodiment of the present specification. Figure 16 , the apparatus may include: a cross-section display module 1602 and a contour display module 1604, wherein:
[0181] The cross-section display module 1602 is used to display a cross-section of an entity on a display interface, wherein the entity includes: clothing and a model trying on the clothing;
[0182] The outline display module 1604 is used to display at least one of a model outline and a clothing outline on the cross section, wherein the model outline is the outline of the model on the cross section, and the clothing outline is the outline of the clothing on the cross section.
[0183] In one example, the contour display module 1604 is also used to display the distance value between the model contour point and the clothing contour point in response to detecting a user's selection operation on the model contour point; the model contour point is a position point on the model contour, and the clothing contour point is a position point on the clothing contour, and the distance value is used to identify the closest distance between the model contour point and the clothing contour point on the cross-section.
[0184] In one example, the contour display module 1604, when used to display the distance value between the model contour point and the clothing contour point, further includes: displaying, on the cross section, a line segment corresponding to the closest distance between the model contour point and the clothing contour point on the clothing contour on the cross section.
[0185] In one example, the contour display module 1604 is further configured to display different model contour points on the model contour in different distance patterns on the cross section, where the different distance patterns indicate that the model contour points correspond to different distances.
[0186] In one example, the contour display module 1604, when used to display different model contour points on the model contour in different distance styles on the cross-section, includes: obtaining the distance corresponding to the model contour point for different model contour points on the model contour; based on the distance ladder in which the distance is located, querying the distance style corresponding to the distance ladder; the distance ladder is used to represent the range in which the distance is located; and displaying the model contour point in the distance style.
[0187] In one example, the cross-section display module 1602, when used to display the cross-section of an entity on a display interface, includes: in response to detecting a user's selection operation for a preset position of the cross-section, displaying a preset cross-section corresponding to the preset position on the display interface; the preset position includes: a positioning point and a rotation angle.
[0188] In one example, the section display module 1602, in response to detecting a user's selection operation for a preset position of the section, before displaying the preset section corresponding to the preset position on the display interface, further includes: receiving the positioning point and rotation angle set by the user; and storing the positioning point and the rotation angle as the preset position.
[0189] In one example, the outline display module 1604 is further configured to display the adjusted clothing outline on the cross section in response to detecting an adjustment operation of the user on the clothing.
[0190] In one example, the cross-section display module 1602, after being used to display the cross-section of an entity on a display interface, further includes: when it is detected that the difference corresponding to the cross-section is less than or equal to a correction threshold, adjusting the position of the cross-section to the position corresponding to the standard positioning; the difference is used to characterize the difference between the positioning parameters of the cross-section and the standard positioning; the standard positioning includes at least one of the following: positioning point, rotation angle.
[0191] In one example, the contour display module 1604, before adjusting the position of the section to the position corresponding to the standard positioning when detecting that the difference corresponding to the section is less than or equal to the correction threshold, further includes: storing the positioning parameters as the standard positioning in response to detecting a user's storage operation on the positioning parameters.
[0192] In one example, the cross-section display module 1602, when used to display the cross-section of an entity on a display interface, includes: when a user trigger operation on the cross-section display mode is detected, displaying the cross-section at a historical position on the display interface, where the historical position is the most recent position of the cross-section.
[0193] In one example, the outline display module 1604 is further used to display at least one of the model outline and clothing outline on the transformed section in response to detecting a user's transformation operation on the section; the transformation operation includes at least one of the following: translation, rotation, and scaling.
[0194] In one example, the outline display module 1604 is further configured to, in response to detecting that the user performs a transformation operation on the cross section, cause the distance value and the line segment to disappear.
[0195] In one example, the contour display module 1604, before being used to obtain the distance corresponding to the model contour point for different model contour points on the model contour, further includes: receiving the distance ladder set by the user, and the distance style corresponding to the distance ladder; and displaying the distance styles corresponding to different distance ladders on the display interface.
[0196] The implementation process of the functions and effects of each unit in the above-mentioned device is specifically described in the implementation process of the corresponding steps in the above-mentioned method, and will not be repeated here.
[0197] For the device embodiments, since they basically correspond to the method embodiments, the relevant parts can be referred to the partial description of the method embodiments. The device embodiments described above are merely illustrative, wherein the modules described as separate components may or may not be physically separated, and the components displayed as modules may or may not be physical modules, that is, they may be located in one place, or they may be distributed on multiple network modules. Some or all of the modules may be selected according to actual needs to achieve the purpose of the scheme of this specification. A person of ordinary skill in the art can understand and implement it without paying any creative work.
[0198] In an exemplary embodiment, a non-transitory computer-readable storage medium including instructions is also provided, such as a memory including instructions, and the above instructions can be executed by a processor of a physical display device to implement any of the methods described in the above embodiments.
[0199] The non-temporary computer-readable storage medium may be a ROM, a random access memory (RAM), a CD-ROM, a magnetic tape, a floppy disk, an optical data storage device, etc., and this application does not limit this.
[0200] In an exemplary embodiment, a computer program product including a computer program / instruction is further provided. The computer program / instruction can be executed by a processor of a physical display device to implement any of the methods described in the above embodiments.
[0201] The foregoing description of this specification describes specific embodiments. Other embodiments are within the scope of the appended claims. In some cases, the actions or steps recited in the claims can be performed in an order different from that described in the embodiments and still achieve the desired results. Furthermore, the processes depicted in the accompanying drawings do not necessarily require the specific order shown or the sequential order to achieve the desired results. In certain embodiments, multitasking and parallel processing are also possible or may be advantageous.
[0202] Other embodiments of the present invention will readily occur to those skilled in the art upon consideration of the present invention and practice of the invention claimed herein. This specification is intended to cover any variations, uses, or adaptations of the present invention that follow the general principles of this specification and include common knowledge or customary techniques in the art not claimed herein. The description and examples are to be considered as exemplary only, with the true scope and spirit of the present invention being indicated by the following claims.
[0203] It should be understood that the present description is not limited to the exact structure that has been described above and shown in the drawings, and that various modifications and changes may be made without departing from the scope thereof. The scope of the present description is limited only by the appended claims.
[0204] The above description is only a preferred embodiment of this specification and is not intended to limit this specification. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of this specification should be included in the scope of protection of this specification.
Claims
1. A method for displaying an entity, characterized in that: The method comprises: Displaying a cross-section of an entity on a display interface, the entity comprising: clothing and a model trying on the clothing; At least one of a model outline and a clothing outline is displayed on the cross section, wherein the model outline is the outline of the model on the cross section, and the clothing outline is the outline of the clothing on the cross section.
2. The method according to claim 1, characterized in that The method further comprises: In response to detecting a user's selection operation on a model contour point, the distance value between the model contour point and the clothing contour point is displayed; the model contour point is a position point on the model contour, and the clothing contour point is a position point on the clothing contour, and the distance value is used to identify the closest distance between the model contour point and the clothing contour point on the cross-section.
3. The method according to claim 2, characterized in that The display of the distance value between the model outline point and the clothing outline point also includes: On the cross section, a line segment corresponding to the shortest distance between the model contour point and the clothing contour point on the cross section is displayed.
4. The method according to claim 1, wherein The method further comprises: Different model contour points on the model contour are displayed in different distance patterns on the cross section, and the different distance patterns indicate that the distances corresponding to the model contour points are different.
5. The method according to claim 4, characterized in that The different model contour points on the model contour are displayed in different distance patterns on the cross section, including: For different model contour points on the model contour, obtaining distances corresponding to the model contour points; Based on the distance ladder in which the distance is located, querying the distance pattern corresponding to the distance ladder; the distance ladder is used to represent the range in which the distance is located; The model contour points are displayed in the distance pattern.
6. The method according to claim 1, characterized in that Displaying the cross section of the entity on the display interface includes: In response to detecting a user's selection operation on a preset position of the section, a preset section corresponding to the preset position is displayed on the display interface; the preset position includes: a positioning point and a rotation angle.
7. The method according to claim 6, characterized in that Before displaying the preset cross section corresponding to the preset position on the display interface in response to detecting the user's selection operation for the preset position of the cross section, the method further includes: receiving the positioning point and rotation angle set by the user; The positioning point and the rotation angle are stored as the preset positioning.
8. The method according to claim 1, characterized in that The method further comprises: In response to detecting an adjustment operation of the garment by the user, an adjusted garment outline is displayed on the cross section.
9. The method according to claim 1, characterized in that After displaying the cross section of the entity on the display interface, the method further includes: When it is detected that the difference corresponding to the section is less than or equal to the correction threshold, the position of the section is adjusted to the position corresponding to the standard positioning; the difference is used to characterize the difference between the positioning parameters of the section and the standard positioning; the standard positioning includes at least one of the following: positioning point, rotation angle.
10. The method according to claim 9, characterized in that Before adjusting the position of the cross section to a position corresponding to the standard positioning when it is detected that the difference value corresponding to the cross section is less than or equal to the correction threshold, the method further includes: In response to detecting a user storage operation on the positioning parameter, the positioning parameter is stored as the standard positioning.
11. The method according to claim 1, wherein Displaying the cross section of the entity on the display interface includes: When a triggering operation of the cross-sectional view display mode by the user is detected, the cross-sectional view is displayed at a historical position of the display interface, where the historical position is the most recent position of the cross-sectional view.
12. The method according to claim 1, characterized in that The method further comprises: In response to detecting a user's transformation operation on the cross section, at least one of the model outline and the clothing outline on the transformed cross section is displayed; the transformation operation includes at least one of the following: translation, rotation, and scaling.
13. The method according to claim 3, characterized in that The method further comprises: In response to detecting the user's transformation operation on the cross section, the distance value and the line segment disappear.
14. The method according to claim 5, characterized in that Before obtaining the distances corresponding to the different model contour points on the model contour, the method further includes: receiving the distance ladder set by a user and a distance pattern corresponding to the distance ladder; Distance patterns corresponding to different distance steps are displayed on the display interface.
15. A physical display device, characterized in that: The device comprises: A cross-section display module, configured to display a cross-section of an entity on a display interface, the entity comprising: clothing and a model trying on the clothing; The outline display module is used to display at least one of a model outline and a clothing outline on the cross section, wherein the model outline is the outline of the model on the cross section, and the clothing outline is the outline of the clothing on the cross section.
16. An electronic device, characterized in that: include: processor; a memory for storing processor-executable instructions; The processor implements the method according to any one of claims 1 to 14 by running the executable instructions.
17. A computer-readable storage medium having computer instructions stored thereon, characterized in that: When the instruction is executed by a processor, the method according to any one of claims 1 to 14 is implemented.
18. A computer program product having a computer program / instructions stored thereon, characterized in that: When the computer program / instructions are executed by a processor, the method according to any one of claims 1 to 14 is implemented.