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放射学中的高级三维可视化与三维打印

Advanced 3D Visualization and 3D Printing in Radiology.

作者信息

Fidvi Shabnam, Holder Justin, Li Hong, Parnes Gregory J, Shamir Stephanie B, Wake Nicole

机构信息

Department of Radiology, Montefiore Medical Center, Bronx, NY, USA.

Department of Radiology, Jacobi Medical Center, Bronx, NY, USA.

出版信息

Adv Exp Med Biol. 2023;1406:103-138. doi: 10.1007/978-3-031-26462-7_6.

DOI:10.1007/978-3-031-26462-7_6
PMID:37016113
Abstract

Since the discovery of X-rays in 1895, medical imaging systems have played a crucial role in medicine by permitting the visualization of internal structures and understanding the function of organ systems. Traditional imaging modalities including Computed Tomography (CT), Magnetic Resonance Imaging (MRI) and Ultrasound (US) present fixed two-dimensional (2D) images which are difficult to conceptualize complex anatomy. Advanced volumetric medical imaging allows for three-dimensional (3D) image post-processing and image segmentation to be performed, enabling the creation of 3D volume renderings and enhanced visualization of pertinent anatomic structures in 3D. Furthermore, 3D imaging is used to generate 3D printed models and extended reality (augmented reality and virtual reality) models. A 3D image translates medical imaging information into a visual story rendering complex data and abstract ideas into an easily understood and tangible concept. Clinicians use 3D models to comprehend complex anatomical structures and to plan and guide surgical interventions more precisely. This chapter will review the volumetric radiological techniques that are commonly utilized for advanced 3D visualization. It will also provide examples of 3D printing and extended reality technology applications in radiology and describe the positive impact of advanced radiological image visualization on patient care.

摘要

自1895年发现X射线以来,医学成像系统通过使内部结构可视化并了解器官系统的功能,在医学中发挥了至关重要的作用。传统成像方式包括计算机断层扫描(CT)、磁共振成像(MRI)和超声(US),呈现的是固定的二维(2D)图像,难以将复杂的解剖结构概念化。先进的容积医学成像允许进行三维(3D)图像后处理和图像分割,从而能够创建3D体积渲染图,并增强对相关解剖结构的3D可视化。此外,3D成像用于生成3D打印模型和扩展现实(增强现实和虚拟现实)模型。3D图像将医学成像信息转化为一个视觉故事,将复杂的数据和抽象的概念转化为一个易于理解和切实的概念。临床医生使用3D模型来理解复杂的解剖结构,并更精确地规划和指导手术干预。本章将回顾常用于高级3D可视化的容积放射技术。它还将提供3D打印和扩展现实技术在放射学中的应用示例,并描述先进放射图像可视化对患者护理的积极影响。

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