Prosthesis breast augmentation implantation system based on three-dimensional anatomical positioning

Through the breast augmentation implant system based on three-dimensional anatomical positioning, the problem of insufficient individualized anatomical structure analysis in breast augmentation surgery is solved, the accuracy and safety of the surgery are achieved, postoperative complications are reduced, and patient satisfaction and surgical results are improved.

CN120690457APending Publication Date: 2025-09-23NANJING SOUTHEAST BEAUTY HOSPITAL CO LTD
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Patent Information

Application Number
CN202510801390.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-16
Publication Date
2025-09-23

AI Technical Summary

Technical Problem

Existing breast augmentation surgeries with implants lack individualized anatomical structure analysis, leading to problems such as implant displacement, capsular contracture, and breast asymmetry. In addition, existing three-dimensional anatomical positioning systems are insufficient in terms of dynamic adaptation to anatomical structures and intraoperative navigation accuracy, making it difficult to ensure the accuracy and safety of the surgery.

Method used

A breast augmentation prosthesis implantation system based on three-dimensional anatomical positioning is used, including a three-dimensional data acquisition module, a modeling module, a prosthesis positioning planning module, a surgical navigation and positioning device, a prosthesis implantation auxiliary tool, a postoperative evaluation and feedback module and a database module. Patient data is acquired through a high-precision three-dimensional scanner, and an accurate three-dimensional model is constructed. Combined with anatomical landmark recognition, dual-plane dynamic adaptation and biomechanical simulation, personalized prosthesis implantation and real-time intraoperative navigation are achieved. Prosthesis clamps and endoscopic monitoring are used to ensure surgical accuracy, and postoperative evaluation and feedback are performed.

Benefits of technology

It has achieved full digital management from preoperative preparation to postoperative evaluation, improved the accuracy and safety of surgery, reduced postoperative complications, increased patient satisfaction and the naturalness of surgical results, and provided scientific basis and data support.

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Abstract

The invention relates to the technical field of medical cosmetology and computer-assisted surgery, and discloses a three-dimensional anatomical positioning-based prosthesis breast augmentation implantation system, which comprises a three-dimensional data acquisition module, a modeling module, a prosthesis positioning planning module, a surgical navigation and positioning device, a prosthesis implantation auxiliary tool, a postoperative evaluation and feedback module and a database module, the three-dimensional data acquisition module comprises a high-precision three-dimensional scanner and is used for acquiring three-dimensional form data of the chest of a patient and ensuring the accuracy and integrity of the data; by integrating a three-dimensional data acquisition module, a modeling module, a prosthesis positioning planning module, a surgical navigation and positioning device, a prosthesis implantation auxiliary tool, a postoperative evaluation and feedback module and a database module, whole-course digital management from preoperative preparation to postoperative evaluation is realized, and surgical accuracy and safety are greatly improved.
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Description

Technical Field

[0001] The present invention relates to the technical fields of medical cosmetology and computer-assisted surgery, and in particular to a breast augmentation prosthesis implantation system based on three-dimensional anatomical positioning. Background Art

[0002] In the field of medical cosmetology and computer-assisted surgery, the demand for precision and personalization of breast augmentation surgery with implants is becoming increasingly prominent. Traditional breast augmentation surgery with implants relies on the doctor's experience to judge the position of the implant, which can easily lead to problems such as implant displacement, capsular contracture, and breast asymmetry due to deviations in anatomical positioning. In existing technologies, some digital technologies optimize the incision path through endoscope assistance or simple three-dimensional modeling, but lack accurate analysis of the patient's individual anatomical structure, and do not combine biomechanical simulation to predict postoperative effects. In addition, the prosthesis is not compatible with anatomical structures such as the pectoralis major muscle and breast tissue, which may affect the postoperative feel and long-term stability. In recent years, the development of three-dimensional imaging and computer-aided design (CAD) technology has provided new ideas for preoperative planning.

[0003] However, the existing three-dimensional anatomically positioned breast augmentation implant system still has shortcomings in dynamic adaptation of anatomical structures, optimization of prosthesis parameters and intraoperative navigation accuracy. Especially for patients with chest deformities and special tissue conditions, there is a lack of intelligent solutions based on individual three-dimensional anatomical data. There are problems with the digital management of the entire process from preoperative to postoperative evaluation, making it difficult to ensure the accuracy and safety of the surgery.

[0004] To this end, we propose a breast augmentation implantation system based on three-dimensional anatomical positioning. Summary of the Invention

[0005] The present invention mainly aims to solve the technical problems existing in the above-mentioned prior art and provide a breast augmentation prosthesis implantation system based on three-dimensional anatomical positioning.

[0006] In order to achieve the above-mentioned objectives, the present invention adopts the following technical solutions: a breast augmentation implantation system based on three-dimensional anatomical positioning, including a three-dimensional data acquisition module, a modeling module, a prosthesis positioning planning module, a surgical navigation and positioning device, a prosthesis implantation auxiliary tool, a postoperative evaluation and feedback module and a database module. The three-dimensional data acquisition module includes a high-precision three-dimensional scanner for obtaining three-dimensional morphological data of the patient's chest to ensure the accuracy and completeness of the data.

[0007] Preferably, the modeling module includes a three-dimensional modeling unit, and the software constructs an accurate three-dimensional model of the patient's chest based on the acquired three-dimensional morphological data, providing a basis for subsequent prosthesis positioning planning.

[0008] Preferably, the prosthesis positioning planning module includes an anatomical landmark recognition unit, a dual-plane dynamic adaptation unit and a biomechanical simulation unit. The anatomical landmark recognition unit can automatically identify important anatomical structures of the patient's chest, the sternum, ribs and inframammary folds, to ensure the accuracy and safety of prosthesis implantation. The dual-plane dynamic adaptation unit dynamically adjusts the position and shape of the prosthesis according to the patient's chest morphology and desired postoperative effect to achieve a personalized prosthesis implantation plan. The biomechanical simulation unit simulates and analyzes the biomechanical effects after prosthesis implantation, predicts possible problems after surgery, and provides a scientific basis for surgical operations.

[0009] Preferably, the surgical navigation and positioning device includes an intelligent locator and an endoscope real-time monitoring unit. The intelligent locator can track and display the position of the prosthesis in real time to ensure the accuracy and safety of the surgical operation. The endoscope real-time monitoring unit provides a clear field of view during the operation, helping doctors to better understand the progress of the operation.

[0010] Preferably, the prosthesis implantation auxiliary tool includes a prosthesis clamp, an implantation angle adjuster and a soft tissue protector. The prosthesis clamp can stably clamp the prosthesis to prevent displacement and rotation during the implantation process. The implantation angle adjuster can accurately adjust the implantation angle of the prosthesis to ensure that it matches the patient's chest shape and the desired postoperative effect. The soft tissue protector is used to protect the surrounding soft tissue during the implantation process to reduce surgical trauma and the occurrence of postoperative complications.

[0011] Preferably, the postoperative evaluation and feedback module includes a postoperative effect evaluation unit and a patient satisfaction survey unit. The postoperative effect evaluation unit can objectively evaluate the surgical effect based on the postoperative three-dimensional morphological data, and the patient satisfaction survey unit collects patient satisfaction feedback on the surgical effect through a questionnaire survey, providing a reference for subsequent surgical improvements.

[0012] Preferably, the database module includes a patient data unit, a surgical plan library and an expert experience library. The patient data unit stores each patient's chest three-dimensional morphological data, surgical plan and postoperative effect evaluation results, which is convenient for doctors to check and compare at any time. The surgical plan library includes a variety of different prosthesis implantation plans. Doctors can choose the appropriate plan for adjustment and optimization according to the patient's specific situation. The expert experience library brings together the surgical experience and skills of experts in the field, providing doctors with valuable reference and learning resources.

[0013] The present invention provides a breast augmentation implantation system based on three-dimensional anatomical positioning. It has the following beneficial effects:

[0014] 1. This breast augmentation implant system based on three-dimensional anatomical positioning integrates a three-dimensional data acquisition module, a modeling module, a prosthesis positioning planning module, a surgical navigation and positioning device, a prosthesis implant auxiliary tool, a postoperative evaluation and feedback module, and a database module. It realizes full digital management from preoperative preparation to postoperative evaluation, greatly improving the accuracy and safety of the operation.

[0015] 2. This breast augmentation implant system based on three-dimensional anatomical positioning is equipped with a three-dimensional data acquisition module and a modeling module. The system obtains the three-dimensional morphological data of the patient's chest through a high-precision three-dimensional scanner, providing a solid foundation for subsequent three-dimensional modeling and prosthesis positioning planning, ensuring the accuracy and completeness of the data. The three-dimensional modeling unit can construct an accurate three-dimensional model of the patient's chest, allowing doctors to plan and simulate operations in a virtual environment and further optimize the surgical plan.

[0016] 3. This breast augmentation implantation system based on three-dimensional anatomical positioning ensures the accuracy and personalization of implant placement by setting up a implant positioning planning module and a surgical navigation and positioning device. Through the automatic recognition function of the anatomical landmark recognition unit and the personalized adjustment capability of the dual-plane dynamic adaptation unit, it improves the naturalness and satisfaction of the postoperative effect. The real-time tracking and monitoring function of the surgical navigation and positioning device provides doctors with a clear surgical field of view and precise implant position information, further ensuring the safety and accuracy of the operation.

[0017] 4. This breast augmentation implant system based on three-dimensional anatomical positioning is equipped with a prosthesis implantation auxiliary tool. Through the design of the prosthesis implantation auxiliary tool, it fully considers the stability and safety during the operation, reduces the occurrence of surgical trauma and postoperative complications, and improves the patient's surgical experience.

[0018] 5. This breast augmentation implant system based on three-dimensional anatomical positioning has a postoperative evaluation and feedback module and a database module. The postoperative evaluation and feedback module can objectively evaluate the surgical effect and collect patient satisfaction feedback, providing strong data support for surgical improvement. The establishment of the database module not only makes it convenient for doctors to check and compare patients' surgical data at any time, but also provides doctors with a wealth of surgical plans and expert experience references, which helps to improve doctors' surgical skills and level. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a system module diagram of the present invention. DETAILED DESCRIPTION

[0020] To more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for the embodiments or the description of the prior art. Obviously, the drawings described below are merely illustrative, and those skilled in the art can, without inventive effort, derive other implementation drawings based on the provided drawings.

[0021] The structures, proportions, sizes, etc. illustrated in this specification are intended only to complement the contents disclosed herein and to facilitate understanding and reading by persons familiar with the art. They are not intended to limit the conditions under which the present invention may be implemented and therefore have no substantive technical significance. Any structural modifications, changes in proportions, or adjustments in sizes, without affecting the efficacy and objectives of the present invention, shall still fall within the scope of the technical contents disclosed herein.

[0022] It should be noted that similar reference numerals and letters denote similar items in the following drawings, and therefore, once an item is defined in one drawing, it does not require further definition or explanation in subsequent drawings.

[0023] In the description of the embodiments of the present invention, it should be noted that the terms "center," "upper," "lower," "inner," "outer," and "side" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, or the orientations or positional relationships in which the inventive product is typically placed when in use. These terms are intended solely to facilitate the description of the present invention and to simplify the description, and are not intended to indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on the present invention. Furthermore, the terms "first," "second," and the like are used solely to distinguish descriptions and should not be construed as indicating or implying relative importance.

[0024] In the description of the embodiments of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "disposed," "installed," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium; and they can refer to internal connections between two components. Those skilled in the art will understand the specific meanings of the above terms in the embodiments of the present invention according to specific circumstances.

[0025] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0026] Example 1: A breast augmentation implantation system based on three-dimensional anatomical positioning, such as Figure 1As shown, the system includes a 3D data acquisition module, a modeling module, a prosthesis positioning planning module, a surgical navigation and positioning device, a prosthesis implantation assistance tool, a postoperative evaluation and feedback module, and a database module. The 3D data acquisition module includes a high-precision 3D scanner to acquire 3D morphological data of the patient's chest, ensuring its accuracy and completeness. The modeling module includes a 3D modeling unit. This software constructs a precise 3D model of the patient's chest based on the acquired 3D morphological data, providing the basis for subsequent prosthesis positioning planning. The prosthesis positioning planning module includes an anatomical landmark recognition unit, a biplane dynamic adaptation unit, and a biomechanical simulation unit. The anatomical landmark recognition unit automatically identifies key anatomical structures of the patient's chest, including the sternum, ribs, and inframammary fold, ensuring the accuracy and safety of prosthesis implantation. The biplane dynamic adaptation unit dynamically adjusts the position and morphology of the prosthesis based on the patient's chest morphology and desired postoperative outcome, enabling personalized prosthesis implantation plans. The biomechanical simulation unit simulates and analyzes the biomechanical effects of prosthesis implantation, predicting potential postoperative problems and providing a scientific basis for surgical procedures. The surgical navigation and positioning device includes an intelligent locator and an endoscopic real-time monitoring unit. The intelligent locator tracks and displays the position of the prosthesis in real time, ensuring the accuracy and safety of the surgical procedure. The endoscopic real-time monitoring unit provides a clear field of view during surgery, helping the surgeon better understand the progress of the procedure. Prosthesis implantation aids include a prosthesis holder, an implant angle adjuster, and a soft tissue protector. The prosthesis holder stably holds the prosthesis to prevent displacement and rotation during implantation. The implant angle adjuster precisely adjusts the implant angle to ensure it matches the patient's chest morphology and the desired postoperative outcome. The soft tissue protector protects the surrounding soft tissue during implantation, minimizing surgical trauma and postoperative complications. The postoperative evaluation and feedback module includes a postoperative outcome assessment unit and a patient satisfaction survey unit. The postoperative outcome assessment unit objectively evaluates surgical outcomes based on postoperative 3D morphological data. The patient satisfaction survey unit collects patient feedback on surgical outcomes through questionnaires, providing a reference for subsequent surgical improvements. The database module includes a patient data unit, a surgical plan library, and an expert experience library. The patient data unit stores each patient's 3D chest morphology data, surgical plan, and postoperative effect evaluation results, allowing doctors to easily access and compare them. The surgical plan library includes a variety of different prosthesis implantation plans, allowing doctors to select the appropriate plan for adjustment and optimization based on the patient's specific situation. The expert experience library brings together the surgical experience and skills of experts in the field, providing doctors with valuable reference and learning resources. By integrating the 3D data acquisition module, modeling module, prosthesis positioning planning module, surgical navigation and positioning device, prosthesis implantation auxiliary tools, postoperative evaluation and feedback module, and database module, full digital management from preoperative preparation to postoperative evaluation is achieved, greatly improving the accuracy and safety of surgery.

[0027] Example 2: Based on Example 1, Figure 1 As shown, the modeling module includes a 3D modeling unit. This software constructs an accurate 3D model of the patient's chest based on the acquired 3D morphological data, providing a foundation for subsequent prosthesis positioning planning. The prosthesis positioning planning module includes an anatomical landmark recognition unit, a dual-plane dynamic adaptation unit, and a biomechanical simulation unit. The anatomical landmark recognition unit automatically identifies key anatomical structures of the patient's chest, including the sternum, ribs, and inframammary fold, ensuring the accuracy and safety of prosthesis implantation. The dual-plane dynamic adaptation unit dynamically adjusts the position and morphology of the prosthesis based on the patient's chest morphology and desired postoperative outcome, enabling a personalized prosthesis implantation plan. The biomechanical simulation unit simulates and analyzes the biomechanical effects of prosthesis implantation, predicting potential postoperative problems and providing a scientific basis for surgical procedures. The surgical navigation and positioning device includes an intelligent locator and an endoscopic real-time monitoring unit. The intelligent locator tracks and displays the prosthesis's position in real time, ensuring the accuracy and safety of surgical procedures. The endoscopic real-time monitoring unit provides a clear field of view during surgery, helping the surgeon better understand the progress of the procedure. Prosthesis implantation auxiliary tools include a prosthesis holder, an implantation angle adjuster, and a soft tissue protector. The prosthesis holder can stably hold the prosthesis to prevent displacement and rotation during the implantation process. The implantation angle adjuster can accurately adjust the implantation angle of the prosthesis to ensure that it matches the patient's chest shape and the desired postoperative effect. The soft tissue protector is used to protect the surrounding soft tissue during the implantation process, reducing surgical trauma and postoperative complications. The postoperative evaluation and feedback module includes a postoperative effect evaluation unit and a patient satisfaction survey unit. The postoperative effect evaluation unit can objectively evaluate the surgical effect based on the postoperative three-dimensional morphological data. The patient satisfaction survey unit collects patient satisfaction feedback on the surgical effect through questionnaires, providing a reference for subsequent surgical improvements. The database module includes a patient data unit, a surgical plan library, and an expert experience library. The patient data unit stores each patient's chest 3D morphological data, surgical plan, and postoperative effect evaluation results, making it easy for doctors to access and compare at any time. The surgical plan library includes a variety of different prosthesis implantation plans, and doctors can choose the appropriate plan to adjust and optimize according to the patient's specific situation. The expert experience library brings together the surgical experience and skills of experts in the field, providing doctors with valuable reference and learning resources. By setting up a 3D data acquisition module and a modeling module, the system obtains the 3D morphological data of the patient's chest through a high-precision 3D scanner, providing a solid foundation for subsequent 3D modeling and prosthesis positioning planning, ensuring the accuracy and completeness of the data. The 3D modeling unit can construct an accurate 3D model of the patient's chest, allowing doctors to plan and simulate surgeries in a virtual environment and further optimize surgical plans.

[0028] Example 3: Based on Example 1 and Example 2, Figure 1 As shown, the prosthesis positioning planning module includes an anatomical landmark recognition unit, a dual-plane dynamic adaptation unit, and a biomechanical simulation unit. The anatomical landmark recognition unit can automatically identify the important anatomical structures of the patient's chest, including the sternum, ribs, and inframammary fold, to ensure the accuracy and safety of prosthesis implantation. The dual-plane dynamic adaptation unit dynamically adjusts the position and shape of the prosthesis based on the patient's chest morphology and desired postoperative effect, achieving a personalized prosthesis implantation plan. The biomechanical simulation unit simulates and analyzes the biomechanical effects after prosthesis implantation, predicts possible postoperative problems, and provides a scientific basis for surgical operations. The surgical navigation and positioning device includes an intelligent locator and an endoscopic real-time monitoring unit. The intelligent locator can track and display the position of the prosthesis in real time to ensure the accuracy and safety of surgical operations. The endoscopic real-time monitoring unit provides a clear field of view during surgery, helping doctors better understand the progress of the operation. Prosthesis implantation auxiliary tools include a prosthesis holder, an implantation angle adjuster, and a soft tissue protector. The prosthesis holder can stably hold the prosthesis to prevent displacement and rotation during the implantation process. The implantation angle adjuster can accurately adjust the implantation angle of the prosthesis to ensure that it matches the patient's chest shape and the desired postoperative effect. The soft tissue protector is used to protect the surrounding soft tissue during the implantation process, reducing surgical trauma and postoperative complications. The postoperative evaluation and feedback module includes a postoperative effect evaluation unit and a patient satisfaction survey unit. The postoperative effect evaluation unit can objectively evaluate the surgical effect based on the postoperative three-dimensional morphological data. The patient satisfaction survey unit collects patient satisfaction feedback on the surgical effect through questionnaires, providing a reference for subsequent surgical improvements. The database module includes a patient data unit, a surgical plan library, and an expert experience library. The patient data unit stores each patient's three-dimensional chest morphological data, surgical plan, and postoperative effect evaluation results, making it easy for doctors to review and compare at any time. The surgical plan library includes a variety of different prosthesis implantation plans, allowing doctors to select the appropriate plan for adjustment and optimization based on the patient's specific situation. The expert experience library brings together the surgical experience and skills of experts in the field, providing doctors with valuable reference and learning resources. By setting up a prosthesis positioning planning module and a surgical navigation and positioning device, the automatic recognition function of the anatomical landmark recognition unit, and the personalized adjustment capability of the dual-plane dynamic adaptation unit, the accuracy and personalization of prosthesis implantation are ensured, and the naturalness and satisfaction of the postoperative effect are improved. The real-time tracking and monitoring function of the surgical navigation and positioning device provides doctors with a clear surgical field of view and accurate prosthesis position information, further ensuring the safety and accuracy of the operation.

[0029] Example 4: Based on Example 1, Example 2 and Example 3, Figure 1As shown, the surgical navigation and positioning device includes an intelligent locator and an endoscopic real-time monitoring unit. The intelligent locator can track and display the position of the prosthesis in real time, ensuring the accuracy and safety of the surgical operation. The endoscopic real-time monitoring unit provides a clear field of view during the operation, helping the surgeon better understand the progress of the procedure. The prosthesis implantation aids include a prosthesis holder, an implant angle adjuster, and a soft tissue protector. The prosthesis holder stably holds the prosthesis to prevent displacement and rotation during implantation. The implant angle adjuster precisely adjusts the implant angle to ensure it matches the patient's chest morphology and the desired postoperative outcome. The soft tissue protector protects the surrounding soft tissue during implantation, minimizing surgical trauma and postoperative complications. The postoperative evaluation and feedback module includes a postoperative effect evaluation unit and a patient satisfaction survey unit. The postoperative effect evaluation unit objectively evaluates the surgical outcome based on postoperative 3D morphological data. The patient satisfaction survey unit collects patient feedback on the surgical outcome through a questionnaire survey, providing a reference for subsequent surgical improvements. The database module includes a patient data unit, a surgical plan library, and an expert experience library. The patient data unit stores each patient's three-dimensional chest morphology data, surgical plan, and postoperative effect evaluation results, making it easy for doctors to access and compare at any time. The surgical plan library includes a variety of different prosthesis implantation plans, allowing doctors to select the appropriate plan for adjustment and optimization based on the patient's specific situation. The expert experience library brings together the surgical experience and skills of experts in the field, providing doctors with valuable reference and learning resources. By setting up prosthesis implantation auxiliary tools and designing them, the stability and safety of the surgical process are fully considered, reducing the occurrence of surgical trauma and postoperative complications, and improving the patient's surgical experience.

[0030] Example 5: Based on Example 1, Example 2, Example 3 and Example 4, Figure 1As shown, the prosthesis implant auxiliary tools include a prosthesis holder, an implant angle adjuster, and a soft tissue protector. The prosthesis holder can stably hold the prosthesis to prevent displacement and rotation during the implantation process. The implant angle adjuster can accurately adjust the implantation angle of the prosthesis to ensure that it matches the patient's chest shape and the desired postoperative effect. The soft tissue protector is used to protect the surrounding soft tissue during the implantation process, reducing surgical trauma and postoperative complications. The postoperative evaluation and feedback module includes a postoperative effect evaluation unit and a patient satisfaction survey unit. The postoperative effect evaluation unit can objectively evaluate the surgical effect based on the postoperative three-dimensional morphological data. The patient satisfaction survey unit collects patient satisfaction feedback on the surgical effect through questionnaires, providing a reference for subsequent surgical improvements. The database module includes a patient data unit, a surgical plan library, and an expert experience library. The patient data unit stores each patient's three-dimensional chest morphology data, surgical plan, and postoperative effect evaluation results, making it easy for doctors to review and compare at any time. The surgical plan library includes a variety of different prosthesis implantation plans, and doctors can choose the appropriate plan to adjust and optimize according to the patient's specific situation. The expert experience library brings together the surgical experience and skills of experts in the field, providing doctors with valuable reference and learning resources. By setting up a postoperative evaluation and feedback module and a database module, the postoperative evaluation and feedback module can objectively evaluate the surgical effect and collect patient satisfaction feedback, providing strong data support for surgical improvement. The establishment of the database module not only makes it easy for doctors to review and compare patients' surgical data at any time, but also provides doctors with a wealth of surgical plans and expert experience references, which helps to improve doctors' surgical skills and level.

[0031] The working principle of the present invention is as follows: The system uses a three-dimensional data acquisition module to obtain precise three-dimensional morphological data of the patient's chest, ensuring the accuracy and completeness of the data. This data is input into the modeling module, and a precise three-dimensional model of the patient's chest is constructed using three-dimensional modeling software. This model not only includes the outer contours of the chest, but also records in detail the positional information of key anatomical structures such as the sternum, ribs, and inframammary folds, providing a solid foundation for subsequent steps. Next, in the prosthesis positioning planning module, the anatomical landmark recognition unit automatically identifies these key anatomical structures to ensure the accuracy and safety of prosthesis implantation. At the same time, the dual-plane dynamic adaptation unit dynamically adjusts the position and morphology of the prosthesis based on the patient's chest morphology, the desired postoperative effect, and the doctor's clinical experience, thereby formulating a personalized implantation plan. The biomechanical simulation unit simulates and analyzes the biomechanical effects of this plan, predicts possible postoperative problems, and provides a scientific basis for surgical operations.

[0032] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.

Claims

1. A breast augmentation implantation system based on three-dimensional anatomical positioning, including a three-dimensional data acquisition module, a modeling module, a prosthesis positioning planning module, a surgical navigation and positioning device, a prosthesis implantation auxiliary tool, a postoperative evaluation and feedback module and a database module. The three-dimensional data acquisition module includes a high-precision three-dimensional scanner.

2. The breast augmentation implant system based on three-dimensional anatomical positioning according to claim 1, characterized in that: The modeling module includes a three-dimensional modeling unit.

3. The breast augmentation implant system based on three-dimensional anatomical positioning according to claim 1, characterized in that: The prosthesis positioning planning module includes an anatomical landmark recognition unit, a dual-plane dynamic adaptation unit and a biomechanical simulation unit.

4. The breast augmentation implant system based on three-dimensional anatomical positioning according to claim 1, characterized in that: The surgical navigation and positioning device includes an intelligent locator and an endoscope real-time monitoring unit.

5. The breast augmentation implant system based on three-dimensional anatomical positioning according to claim 1, characterized in that: The prosthesis implantation auxiliary tool comprises a prosthesis clamp, an implantation angle adjuster and a soft tissue protector.

6. The breast augmentation implant system based on three-dimensional anatomical positioning according to claim 1, characterized in that: The postoperative evaluation and feedback module includes a postoperative effect evaluation unit and a patient satisfaction survey unit.

7. The breast augmentation implant system based on three-dimensional anatomical positioning according to claim 1, characterized in that: The database module includes a patient data unit, a surgical plan library and an expert experience library.