Orthodontic double-view intelligent planning method and system
By constructing a split-screen dual-view interface and a bidirectional mapping algorithm, the synchronous display of the ideal target position and the overcorrection design position and the linkage adjustment of parameters were realized, which solved the problem of communication barriers between doctors and patients in invisible orthodontics and improved the efficiency and accuracy of treatment.
Patent Information
- Application Number
- CN202511018196.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-23
- Publication Date
- 2025-11-14
AI Technical Summary
In invisible orthodontic treatment, existing technologies cannot effectively present the ideal target position and the overcorrection design position simultaneously, leading to communication barriers between doctors and patients and low treatment compliance.
The orthodontic dual-view intelligent planning method is adopted. By constructing a split-screen dual-view interface, a bidirectional mapping algorithm between the ideal target position and the overcorrection design position is established to realize the linkage adjustment of parameters. When the marking operation is performed at the ideal target position, an interactive event is generated to automatically adjust the correction parameters of the overcorrection design position.
It improves the efficiency of doctor-patient communication, reduces manual adjustments, enhances the efficiency and accuracy of orthodontic planning, ensures that orthodontic parameters are more in line with clinical needs, and promotes the development of orthodontic treatment towards intelligence and refinement.
Smart Images

Figure CN120938632A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of artificial intelligence technology, and in particular to an intelligent planning method and system for orthodontic dual-view imaging. Background Technology
[0002] In invisible orthodontic treatment, overcorrection and compensation are key technical strategies in the treatment plan. Their core purpose is to compensate for the uncertainty in the tooth movement process and improve the accuracy and stability of the treatment results.
[0003] However, in past invisible treatments, medical device manufacturers designed solutions based directly on overcorrection views. The tooth conditions shown (such as the incisal edges of anterior teeth being aligned or open bite in extraction cases) differed visually from the ideal "well-formed overbite and overjet" in the patient's perception. This information mismatch led to serious communication barriers between doctors and patients. Patients questioned the treatment plan because they could not understand the clinical logic of overcorrection, while doctors had to spend a lot of time explaining the design principles. This not only prolonged the treatment confirmation period but also potentially reduced patient compliance due to insufficient communication.
[0004] Therefore, there is an urgent need for an intelligent orthodontic dual-view planning method that can simultaneously present the ideal target position and the overcorrection design position and establish the relationship between the two, in order to eliminate information gaps and improve communication efficiency. Summary of the Invention
[0005] In view of this, the present invention proposes an orthodontic dual-view intelligent planning method and system, which can simultaneously present the ideal target position and the overcorrection design position.
[0006] To achieve the above objectives, the present invention provides the following technical solution:
[0007] An intelligent planning method for orthodontic dual-view imaging includes:
[0008] Construct a split-screen dual-view interface, wherein the split-screen dual-view interface includes an ideal target position and an overcorrection design position;
[0009] A bidirectional mapping algorithm between ideal target position parameters and overcorrection parameters is established, and the overcorrection design position parameters are automatically adjusted when the ideal target position parameters change.
[0010] When a marking operation is performed at the ideal target location, an interaction event is generated, the interaction time including the marking position and the marking type;
[0011] The overcorrection design position automatically marks the corresponding orthodontic parameter module of the tooth based on the interaction event, and generates parameter adjustment suggestions related to the interaction event.
[0012] Based on the above technical solution, the present invention can be further improved as follows:
[0013] Optionally, the orthodontic dual-view intelligent planning method further includes:
[0014] An orthodontic medical knowledge base is embedded in the overcorrection design position. When the corrective force value is detected to exceed the preset threshold, an early warning message is generated.
[0015] Optionally, the algorithm for establishing a bidirectional mapping between the ideal target position parameters and the overcorrection parameters includes:
[0016] The overcorrection parameter values are calculated using formula (1);
[0017] P compensntion =[P base +(ΔT×S)+A]×F mechanics Formula (1);
[0018] In the formula, P compensation For overcorrection parameter values, P base The basic overcorrection parameters are: ΔT is the change in the ideal target position parameter, S is the sensitivity coefficient, A is the anatomical compensation value, and F is the anatomical compensation value. mechanics For mechanical correction factors;
[0019] The change in the ideal target position parameter is calculated using formula (2);
[0020]
[0021] Optionally, the algorithm for establishing a bidirectional mapping between the ideal target position parameters and the overcorrection parameters includes:
[0022] The anterior tooth torque compensation value is calculated using formula (3);
[0023] T = [T] base +(ΔP×k p )+0.3×(B-2.5)]×F safety Formula (3);
[0024] In the formula, T is the anterior tooth torque compensation value, T base The base torque, ΔP is the change in incisor profile, k p B is the proportionality coefficient, F is the jerk-torque sensitivity coefficient, and F is the proportionality coefficient. safety For mechanical safety factors;
[0025] The change in incisor protrusion is calculated using formula (4);
[0026]
[0027] Optionally, the algorithm for establishing a bidirectional mapping between the ideal target position parameters and the overcorrection parameters includes:
[0028] The vertical opening and closing angle is calculated using formula (5);
[0029] V = [V base +(ΔO×k o )+0.5×(MPA-32)]×F vert Formula (5);
[0030] In the formula, V is the vertical opening angle, V base The basic opening angle, ΔO is the change in overlap, and k o The overbite-open bite sensitivity coefficient is given by MPA, where MPA is the mandibular plane angle, and F is the mandibular angle. vert Vertical safety factor;
[0031] The change in coverage is calculated using formula (6);
[0032]
[0033] Optionally, the algorithm for establishing a bidirectional mapping between the ideal target position parameters and the overcorrection parameters includes:
[0034] The molar axial tilt compensation angle is calculated using formula (7);
[0035] A = [A base +(ΔM×k m )+0.7×(R-14)]×F axial Formula (7);
[0036] In the formula, A is the molar axis tilt compensation angle, A base The basic tilt angle is ΔM, which represents the mesiodistal movement of the molar, and k m The displacement-tilt sensitivity coefficient is given by R, where R is the root length and F is the displacement-tilt sensitivity coefficient. axial This is the axis tilt safety factor;
[0037] The mesial and distal movement of the molars is calculated using formula (8);
[0038]
[0039] Optionally, the orthodontic dual-view intelligent planning method further includes:
[0040] The mechanical correction factor is calculated using formula (9);
[0041]
[0042] In the formula, F mechanics F is the mechanical correction factor. excess For corrective force, F threshold K is the physiological safety force threshold for tooth movement. adjust This is the adjustment factor for mechanical correction.
[0043] An orthodontic dual-view intelligent planning system, comprising:
[0044] The interface construction module is used to construct a split-screen dual-view interface, wherein the split-screen dual-view interface includes an ideal target position and an overcorrection design position;
[0045] The mapping algorithm module is used to establish a two-way mapping algorithm between the ideal target position parameters and the overcorrection parameters. When the ideal target position parameters change, the overcorrection design position parameters are automatically adjusted.
[0046] The event generation module is used to generate an interactive event when a marking operation is performed at the ideal target position, wherein the interactive event includes the marking position and the marking type;
[0047] The response module is used to automatically mark the orthodontic parameters of the corresponding teeth based on the interaction event in the over-treatment design position, and generate parameter adjustment suggestions related to the interaction event.
[0048] An electronic device includes a memory, a processor, and a computer program stored in the memory and running on the processor, wherein the processor executes the computer program to implement the steps of the method described herein.
[0049] A non-transitory computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements the steps of the method.
[0050] The present invention has the following advantages:
[0051] This invention presents an intelligent orthodontic dual-view planning method. The split-screen dual-view interface simultaneously displays the ideal target and the overcorrection design, facilitating solution comparison. A bidirectional mapping algorithm enables linked parameter adjustments, improving planning efficiency and accuracy. The ideal target position marker triggers interaction, while the overcorrection position automatically responds to the marker and generates suggestions, making orthodontic parameter planning more aligned with clinical needs. This effectively reduces repeated manual adjustments. Through intelligent linkage and precise interaction, it assists in the scientific and efficient development of orthodontic plans, promoting the intelligent and refined development of orthodontic treatment planning. Attached Figure Description
[0052] For illustrative purposes and not limiting, the present invention will now be described in conjunction with embodiments and accompanying drawings, wherein:
[0053] Figure 1 This is a flowchart illustrating the orthodontic dual-view intelligent planning method in an embodiment of the present invention.
[0054] Figure 2 This is a first schematic diagram of the dual-view intelligent planning method for orthodontics in an embodiment of the present invention.
[0055] Figure 3This is a second schematic diagram of the dual-view intelligent planning method for orthodontics in an embodiment of the present invention;
[0056] Figure 4 This is a schematic diagram of the main components of the orthodontic dual-view intelligent planning system in an embodiment of the present invention;
[0057] Figure 5 This is a schematic diagram of the physical structure of the electronic device provided by the present invention. Detailed Implementation
[0058] To enable those skilled in the art to better understand the present invention, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of the present invention.
[0059] It should be noted that the terms "first," "second," etc., in the specification and accompanying drawings of this invention are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be used interchangeably where appropriate for the embodiments of the invention described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.
[0060] It should be noted that, where there is no conflict, the embodiments and features of the present invention can be combined with each other. The embodiments of the present invention will now be described in detail with reference to the accompanying drawings.
[0061] Figure 1 This is a flowchart illustrating the orthodontic dual-view intelligent planning method in an embodiment of the present invention, as shown below. Figure 1 As shown, the orthodontic dual-view intelligent planning method provided in this embodiment of the invention includes the following steps S101 to S104.
[0062] S101, construct a split-screen dual-view interface, which includes the ideal target position and the overcorrection design position.
[0063] like Figure 2 and Figure 3As shown, the ideal target position displays in real time the ideal alignment of the patient's teeth after orthodontic treatment, the occlusal relationship, and the simulated effect of facial soft tissue profile; the overcorrection design position displays overcorrection parameters that are set based on clinical experience and slightly exceed the ideal target position, including detailed data such as the tilt angle and spacing of the teeth. The two views can be zoomed and rotated simultaneously, making it convenient for doctors to compare and observe.
[0064] S102, establish a bidirectional mapping algorithm between the ideal target position parameters and the overcorrection parameters, and automatically adjust the overcorrection design position parameters when the ideal target position parameters change.
[0065] Based on orthodontic biomechanics principles and a large amount of clinical case data, the bidirectional mapping algorithm associates parameters such as tooth movement distance and angle at the ideal target position with corresponding parameters at the over-treatment design position. For example, when the retraction of the anterior teeth at the ideal target position increases by 1 mm, the retraction of the corresponding teeth at the over-treatment design position automatically increases according to a preset ratio.
[0066] The overcorrection parameter values are calculated using formula (1);
[0067] P compensation =[P base +(ΔT×S)+A]×F mechanics Formula (1);
[0068] In the formula, P compensation For overcorrection parameter values, P base The basic overcorrection parameters are: ΔT is the change in the ideal target position parameter, S is the sensitivity coefficient, A is the anatomical compensation value, and F is the anatomical compensation value. mechanics For mechanical correction factors;
[0069] The change in the ideal target position parameter is calculated using formula (2);
[0070]
[0071] The anterior tooth torque compensation value is calculated using formula (3);
[0072] T = [T] base +(ΔP×k p )+0.3×(B-2.5)]×F safety Formula (3);
[0073] In the formula, T is the anterior tooth torque compensation value, T base The base torque, ΔP is the change in incisor profile, k p B is the proportionality coefficient, F is the jerk-torque sensitivity coefficient, and F is the proportionality coefficient. safety For mechanical safety factors;
[0074] The change in incisor protrusion is calculated using formula (4);
[0075]
[0076] The vertical opening and closing angle is calculated using formula (5);
[0077] V = [V base +(ΔO×k o )+0.5×(MPA-32)]×F vert Formula (5);
[0078] In the formula, V is the vertical opening angle, V base The basic opening angle, ΔO is the change in overlap, and k o The overbite-open bite sensitivity coefficient is given by MPA, where MPA is the mandibular plane angle, and F is the mandibular angle. vert Vertical safety factor;
[0079] The change in coverage is calculated using formula (6);
[0080]
[0081] The molar axial tilt compensation angle is calculated using formula (7);
[0082] A = [A base +(ΔM×k m )+0.7×(R-14)]×F axial Formula (7);
[0083] In the formula, A is the molar axis tilt compensation angle, A base The basic tilt angle is ΔM, which represents the mesiodistal movement of the molar, and k m The displacement-tilt sensitivity coefficient is given by R, where R is the root length and F is the displacement-tilt sensitivity coefficient. axial This is the axis tilt safety factor;
[0084] The mesial and distal movement of the molars is calculated using formula (8);
[0085]
[0086] S103, when a marking operation is performed at the ideal target position, an interactive event is generated. The interactive event includes the marking position and the marking type.
[0087] Doctors can mark specific teeth at ideal target locations by clicking or selecting. The marking types cover areas that need intensive orthodontic treatment and areas with anatomical abnormalities. The system records the three-dimensional coordinates and type information of the markings in real time.
[0088] S104, the over-treatment design position automatically marks the corresponding orthodontic parameter module of the tooth based on the interaction event, and generates parameter adjustment suggestions related to the interaction event.
[0089] The orthodontic design position locates the corresponding tooth based on the interaction event and highlights its orthodontic parameters such as torque and force. At the same time, it combines the orthodontic medical knowledge base to give suggestions based on the marking type. For example, if it is marked as "area with thin alveolar bone", it is recommended to reduce the orthodontic force in that area.
[0090] The orthodontic dual-view intelligent planning method further includes:
[0091] The mechanical correction factor is calculated using formula (9);
[0092]
[0093] In the formula, F mechanice F is the mechanical correction factor. excess For corrective force, F threshold K is the physiological safety force threshold for tooth movement. adjust This is the adjustment factor for mechanical correction.
[0094] An orthodontic medical knowledge base is embedded in the overcorrection design position. When the corrective force value is detected to exceed the preset threshold, an early warning message is generated.
[0095] One example: In orthodontics, such as when performing invisible orthodontics in a routine tooth extraction case, the force on the teeth is as follows: the closer to the occlusal surface, the greater the force. Therefore, even if the teeth are designed to move in parallel, the final effect will have a "roller coaster" effect due to side effects: distal tilting and rotation of the canines, deepening of the overbite of the anterior teeth, and mesial tilting of the posterior teeth.
[0096] During overcorrection planning, different overcorrections will be added depending on the tooth position and anchorage type; routine extractions involve removing tooth 4 or tooth 5.
[0097] For example, when extracting the maxillary fourth tooth, in order to counteract such side effects, additional angular compensation is made beyond the original target position to the final target position. This is done to mitigate the side effects, such as when extracting the fourth tooth.
[0098] To prevent the side effect of mesial tilting of the posterior teeth:
[0099] Tooth #7: Axial tilt 3–5° distal to the crown;
[0100] Tooth #6: Axial tilt 3–5° distal to the crown;
[0101] Tooth #5: Axial tilt 3-5° distal to the crown.
[0102] To prevent distal tilting and rotation of the canines:
[0103] Tooth #3: Axial tilt crown 3–5° mesial;
[0104] The torque root angle is 6–10°.
[0105] To prevent the anterior overbite from deepening:
[0106] Teeth 1 and 2: Torque root lingual direction 6-10°
[0107] Vertically forward teeth should be used to achieve an incisive edge or an open / closed angle of 0-3°, or greater than 3° in cases of severe deep overbite.
[0108] The above-mentioned supplementary over-orthodontic design will be distributed throughout the entire tooth arrangement process and averaged out:
[0109] For example, if tooth #7 needs a total correction of 6° to reach the target position, with each step being 1°, then the treatment is completed in 6 steps. The overcorrection design requires 3° of distal axial tilt compensation, which needs to be averaged across the 6 steps. Therefore, in each of the 6 steps, an additional 0.5° of overcorrection design is added. In other words, each actual step involves 1.5° of overcorrection.
[0110] One embodiment:
[0111] Xiao Yu, a patient, had basic overcorrection parameters P of his maxillary central incisors before orthodontic treatment. base =8° (baseline value for anterior tooth torque overcorrection), upon examination: sensitivity coefficient S = 0.6 (clinically statistically adapted to the patient's tooth movement characteristics), anatomical compensation value A = 1.2° (corrected due to individual anatomical factors such as alveolar bone thickness and root morphology), mechanical correction factor F mechanics =0.9 (calculated based on the safety threshold of corrective force and the actual applied force).
[0112] Based on Xiaoyu's facial profile requirements, the doctor planned that the torque of the maxillary central incisor in the ideal target position needs to be increased by ΔT = 3° (from the original natural torque of 10° to the target of 13°, the change is 3°). Substituting this into formula (1), the over-correction parameter value P was calculated. compensation =9.9°;
[0113] In the overcorrection design position, the torque of the maxillary central incisor needs to be set to 9.9°. By slightly exceeding the ideal target overcorrection amount, possible tooth rebound during treatment can be offset, ensuring the final orthodontic effect.
[0114] If the orthodontic design position is planned in advance, the torque of the maxillary central incisor over-orthodontic parameter value P is... compensation =10.5° Based on clinical experience, the overcorrection amount is preset. It is necessary to back-calculate the change in the ideal target position parameter ΔT and substitute it into formula (2), ΔT = 4.12°.
[0115] This means that in the ideal target position, the torque of the maxillary central incisor needs to be planned as (original natural torque + 4.12°). Based on this, the final tooth alignment target is designed, and then the overcorrection parameters are used to ensure the stability of the effect.
[0116] Formula (1) is used to "adjust from the ideal target and derive the overcorrection amount", and Formula (2) is used to "derive the adjustment range of the ideal target from the preset overcorrection amount". The two work together to achieve precise parameter linkage of "ideal target-overcorrection design" in orthodontic treatment, so that the treatment plan not only meets the aesthetic and functional needs, but also ensures long-term effect through overcorrection compensation, and solves clinical problems such as tooth movement rebound.
[0117] Figure 4 This is a schematic diagram of the main components of the orthodontic dual-view intelligent planning system in an embodiment of the present invention. Figure 4 As shown, the orthodontic dual-view intelligent planning system 1 provided in this embodiment of the invention includes an interface construction module 10, a mapping algorithm module 20, an event generation module 30, and a response module 40.
[0118] The interface construction module 10 is used to construct a split-screen dual-view interface, wherein the split-screen dual-view interface includes an ideal target position and an overcorrection design position;
[0119] The mapping algorithm module 20 is used to establish a bidirectional mapping algorithm between the ideal target position parameters and the overcorrection parameters. When the ideal target position parameters change, the overcorrection design position parameters are automatically adjusted.
[0120] Event generation module 30 is used to generate an interactive event when a marking operation is performed at the ideal target position, wherein the interactive event includes the marking position and the marking type;
[0121] The response module 40 is used to automatically mark the orthodontic parameters of the corresponding teeth based on the interaction event in the over-treatment design position, and generate parameter adjustment suggestions related to the interaction event.
[0122] Figure 5 This is a schematic diagram of the physical structure of an electronic device provided in an embodiment of the present invention, such as... Figure 5 As shown, the electronic device 50 includes: a processor 501, a memory 502, and a bus 503;
[0123] The processor 501 and the memory 502 communicate with each other via the bus 503.
[0124] The processor 501 is used to call program instructions in the memory 502 to execute the methods provided in the above-described method embodiments, and to execute the methods provided in the embodiments of the present invention.
[0125] This embodiment provides a non-transitory computer-readable storage medium that stores computer instructions, which cause a computer to execute the method provided in this embodiment of the invention.
[0126] Those skilled in the art will understand that all or part of the steps of the above method embodiments can be implemented by hardware related to program instructions. The aforementioned program can be stored in a computer-readable storage medium. When the program is executed, it performs the steps of the above method embodiments. The aforementioned storage medium includes various storage media capable of storing program code, such as ROM, RAM, magnetic disk, or optical disk.
[0127] The specific embodiments described above do not constitute a limitation on the scope of protection of this invention. Those skilled in the art should understand that various modifications, combinations, sub-combinations, and substitutions can occur depending on design requirements and other factors. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this invention should be included within the scope of protection of this invention.
Claims
1. An intelligent planning method for orthodontic dual-view imaging, characterized in that, include: Construct a split-screen dual-view interface, wherein the split-screen dual-view interface includes an ideal target position and an overcorrection design position; A bidirectional mapping algorithm between ideal target position parameters and overcorrection parameters is established, and the overcorrection design position parameters are automatically adjusted when the ideal target position parameters change. When a marking operation is performed at the ideal target location, an interaction event is generated, the interaction time including the marking position and the marking type; The overcorrection design unit automatically marks the corresponding orthodontic parameter module of the tooth based on the interaction event and generates parameter adjustment suggestions related to the interaction event.
2. The orthodontic dual-view intelligent planning method according to claim 1, characterized in that, The orthodontic dual-view intelligent planning method further includes: An orthodontic medical knowledge base is embedded in the overcorrection design position. When the corrective force value is detected to exceed the preset threshold, an early warning message is generated.
3. The orthodontic dual-view intelligent planning method according to claim 1, characterized in that, The algorithm for establishing a bidirectional mapping between the ideal target position parameters and the overcorrection parameters includes: The overcorrection parameter values are calculated using formula (1); P compensation =[P base +(ΔT×S)+A]×F mechanics Formula (1); In the formula, P compensation For overcorrection parameter values, P base The basic overcorrection parameters are: ΔT is the change in the ideal target position parameter, S is the sensitivity coefficient, A is the anatomical compensation value, and F is the anatomical compensation value. mechanics It is a mechanical correction factor; The change in the ideal target position parameter is calculated using formula (2); 4. The orthodontic dual-view intelligent planning method according to claim 1, characterized in that, The algorithm for establishing a bidirectional mapping between the ideal target position parameters and the overcorrection parameters includes: The anterior tooth torque compensation value is calculated using formula (3); T = [T] basc +(ΔP×k p )+0.3×(B-2.5)]×F sofety Formula (3); In the formula, T is the anterior tooth torque compensation value, T base The base torque, ΔP is the change in incisor profile, k p B is the proportionality coefficient, F is the jerk-torque sensitivity coefficient, and F is the proportionality coefficient. safety For mechanical safety factors; The change in incisor protrusion is calculated using formula (4); 5. The orthodontic dual-view intelligent planning method according to claim 1, characterized in that, The algorithm for establishing a bidirectional mapping between the ideal target position parameters and the overcorrection parameters includes: The vertical opening and closing angle is calculated using formula (5); V = [V base +(ΔO×k o )+0.5×(MPA-32)]×F vert Formula (5); In the formula, V is the vertical opening angle, V base The basic opening angle, ΔO is the change in coverage between overlapping and opening, and k o The overbite-open bite sensitivity coefficient is given by MPA, where MPA is the mandibular plane angle, and F is the mandibular angle. vert Vertical safety factor; The change in coverage is calculated using formula (6); 6. The orthodontic dual-view intelligent planning method according to claim 1, characterized in that, The algorithm for establishing a bidirectional mapping between the ideal target position parameters and the overcorrection parameters includes: The molar axial tilt compensation angle is calculated using formula (7); A = [A base +(ΔM × k m ) + 0.7 × (R - 14)] × F axial Formula (7); In the formula, A is the molar axis tilt compensation angle, A base The basic tilt angle is ΔM, which represents the mesiodistal movement of the molar, and k m The displacement-tilt sensitivity coefficient is given by R, where R is the root length and F is the displacement-tilt sensitivity coefficient. axial This is the shaft tilt safety factor; The mesial and distal movement of the molars is calculated using formula (8); 7. The orthodontic dual-view intelligent planning method according to claim 1, characterized in that, The orthodontic dual-view intelligent planning method further includes: The mechanical correction factor is calculated using formula (9); In the formula, F mechanics F is the mechanical correction factor. excess For corrective force, F threshold K is the physiological safety force threshold for tooth movement. adjust This is the adjustment factor for mechanical correction.
8. A system for intelligent planning of orthodontic dual-view diagrams, characterized in that, include: The interface construction module is used to construct a split-screen dual-view interface, wherein the split-screen dual-view interface includes an ideal target position and an overcorrection design position; The mapping algorithm module is used to establish a two-way mapping algorithm between the ideal target position parameters and the overcorrection parameters. When the ideal target position parameters change, the overcorrection design position parameters are automatically adjusted. The event generation module is used to generate an interactive event when a marking operation is performed at the ideal target position, wherein the interactive event includes the marking position and the marking type; The response module is used to automatically mark the corresponding orthodontic parameters of the teeth based on the interaction event in the over-treatment design position, and generate parameter adjustment suggestions related to the interaction event.
9. An electronic device comprising a memory, a processor, and a computer program stored in the memory and running on the processor, characterized in that, When the processor executes the computer program, it implements the steps of the method as described in any one of claims 1 to 7.
10. A non-transitory computer-readable medium having a computer program stored thereon, characterized in that, When the computer program is executed by a processor, it implements the steps of the method as described in any one of claims 1 to 7.