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一种基于深度学习的先天性心脏病快速全心脏3D建模方法。

A Deep Learning-Based Method for Rapid 3D Whole-Heart Modeling in Congenital Heart Disease.

作者信息

Huang Haiping, Wu Yisheng

机构信息

Zhaoqing Medical College, Zhaoqing, China,

Zhaoqing Medical College, Zhaoqing, China.

出版信息

Cardiology. 2025;150(3):243-258. doi: 10.1159/000541980. Epub 2024 Oct 11.

Abstract

INTRODUCTION

This study aimed to develop a deep learning-based method for generating three-dimensional heart mesh models for patients with congenital heart disease by integrating medical imaging and clinical diagnostic information.

METHODS

A deep learning model was trained using CT and cardiac MRI, along with clinical data from 110 patients. The Web-based platform automatically outputs STL files for 3D printing and Unity 3D OBJ files for virtual reality (VR) applications upon uploading the medical images and diagnostic information. The models were tested on three congenital heart disease cases, with corresponding 3D-printed and VR heart models generated.

RESULTS

The 3D-printed and VR heart models received high praise from professional doctors for their anatomical accuracy and clarity. Evaluations indicated that the proposed method effectively and rapidly reconstructs complex congenital heart disease structures, proving useful for preoperative planning and diagnostic support.

CONCLUSION

The 3D modeling approach has the potential to enhance the precision of surgical planning and diagnosis for congenital heart disease. Future studies should explore larger datasets and training models for different types of congenital heart disease to validate the model's broad applicability.

摘要

引言

本研究旨在开发一种基于深度学习的方法,通过整合医学影像和临床诊断信息,为先天性心脏病患者生成三维心脏网格模型。

方法

使用来自110名患者的CT、心脏MRI以及临床数据训练深度学习模型。基于网络的平台在上传医学影像和诊断信息后,会自动输出用于3D打印的STL文件以及用于虚拟现实(VR)应用的Unity 3D OBJ文件。在三个先天性心脏病病例上对模型进行了测试,并生成了相应的3D打印心脏模型和VR心脏模型。

结果

3D打印心脏模型和VR心脏模型因其解剖学准确性和清晰度而受到专业医生的高度评价。评估表明,所提出的方法能够有效且快速地重建复杂的先天性心脏病结构,对术前规划和诊断支持很有用。

结论

3D建模方法有潜力提高先天性心脏病手术规划和诊断的精度。未来的研究应探索更大的数据集,并针对不同类型的先天性心脏病训练模型,以验证该模型的广泛适用性。

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