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3D面部重建中的人工智能技术:一种在整形手术中重新利用二维标准化图像的方法。

Artificial Intelligence Technology in 3D Facial Reconstruction: An Approach to Reutilize 2D Standardized Images in Plastic Surgery.

作者信息

Deng Yiwen, Wang Ben, Jiang Haiyue

机构信息

Plastic Surgery Hospital, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing, China.

出版信息

Aesthetic Plast Surg. 2025 May 15. doi: 10.1007/s00266-025-04856-2.

Abstract

INTRODUCTION

Two-dimensional (2D) facial photographs serve as crucial data in plastic surgery, and their reuse can yield additional clinical information for reference purposes. The present study presents an approach for three-dimensional (3D) facial reconstruction, wherein the patient's standard facial photograph is imported into a reconstruction algorithm to generate a 3D facial model. This reconstructed model allows for comprehensive observation from various angles, providing accurate representation of the proportion and structural characteristics of the facial contour.

METHODS

A total of 31 patients were randomly selected, and the frontal and lateral photographs of each patient's face were input into the algorithm for facial 3D reconstruction. The facial subunits were analyzed in terms of their proportions, angles, and lengths. The effectiveness of the reconstruction algorithm was evaluated by comparing the dimensions of each index in both frontal and lateral 2D standardized facial photographs, as well as 3D scans of the patient, along with frontal and lateral perspectives of 3D model generated by the reconstruction algorithm.

RESULTS

The algorithm-reconstructed 3D model group showed significant correlations with both the standard photograph group and the 3D scan-reconstructed model group in each indicator, thereby indicating the precise reconstruction of patients' facial information through this reconstruction algorithm.

CONCLUSION

The facial 3D reconstruction algorithm possesses the capability to transform 2D photographs into precise 3D digital models, exhibiting efficiency, convenience, speed, and accessibility while accurately capturing the distinctive attributes of facial subunit. This approach facilitates the reutilization of 2D facial photographs, thereby providing a genuine and invaluable tool for clinical practice.

LEVEL OF EVIDENCE III

This journal requires that authors assign a level of evidence to each article. For a full description of these Evidence-Based Medicine ratings, please refer to the Table of Contents or the online Instructions to Authors   www.springer.com/00266 .

摘要

引言

二维面部照片是整形手术中的关键数据,其再利用可为参考目的提供额外的临床信息。本研究提出了一种三维面部重建方法,即将患者的标准面部照片导入重建算法以生成三维面部模型。该重建模型允许从各个角度进行全面观察,能准确呈现面部轮廓的比例和结构特征。

方法

随机选取31例患者,将每位患者面部的正面和侧面照片输入算法进行面部三维重建。对面部亚单位的比例、角度和长度进行分析。通过比较正面和侧面二维标准化面部照片、患者的三维扫描以及重建算法生成的三维模型的正面和侧面视角中各指标的尺寸,评估重建算法的有效性。

结果

算法重建的三维模型组与标准照片组和三维扫描重建模型组在各指标上均显示出显著相关性,从而表明通过该重建算法可精确重建患者的面部信息。

结论

面部三维重建算法能够将二维照片转换为精确的三维数字模型,具有高效、便捷、快速且可及的特点,同时能准确捕捉面部亚单位的独特属性。这种方法有助于二维面部照片的再利用,从而为临床实践提供了一个真实且宝贵的工具。

证据水平III:本刊要求作者为每篇文章指定证据水平。有关这些循证医学评级的完整描述,请参阅目录或作者在线指南www.springer.com/00266

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