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用更少的资源做更多的事:来自智能手机摄影测量术的现实的立体三维解剖建模。

Doing more with less: Realistic stereoscopic three-dimensional anatomical modeling from smartphone photogrammetry.

机构信息

UMR 1253, iBrain, Université de Tours, Inserm, Tours, France.

Centre Hospitalier Régional Universitaire de Strasbourg, Strasbourg, France.

出版信息

Anat Sci Educ. 2024 Jun;17(4):864-877. doi: 10.1002/ase.2402. Epub 2024 Mar 15.

Abstract

Traditional teaching methods struggle to convey three-dimensional concepts effectively. While 3D virtual models and virtual reality platforms offer a promising approach to teaching anatomy, their cost and specialized equipment pose limitations, especially in disadvantaged areas. A simpler alternative is to use virtual 3D models displayed on regular screens, but they lack immersion, realism, and stereoscopic vision. To address these challenges, we developed an affordable method utilizing smartphone-based 360° photogrammetry, virtual camera recording, and stereoscopic display (anaglyph or side-by-side technique). In this study, we assessed the feasibility of this method by subjecting it to various specimen types: osteological, soft organ, neuroanatomical, regional dissection, and a dedicated 3D-printed testing phantom. The results demonstrate that the 3D models obtained feature a complete mesh with a high level of detail and a realistic texture. Mesh and texture resolutions were estimated to be approximately 1 and 0.2 mm, respectively. Additionally, stereoscopic animations were both feasible and effective in enhancing depth perception. The simplicity and affordability of this method position it as a technique of choice for creating easily photorealistic anatomical models combined with stereoscopic depth visualization.

摘要

传统教学方法在有效地传达三维概念方面存在困难。虽然 3D 虚拟模型和虚拟现实平台为解剖学教学提供了有前景的方法,但它们的成本和专用设备存在限制,特别是在贫困地区。一个更简单的替代方案是使用常规屏幕上显示的虚拟 3D 模型,但它们缺乏沉浸感、真实感和立体视觉。为了解决这些挑战,我们开发了一种经济实惠的方法,利用基于智能手机的 360°摄影测量、虚拟相机记录和立体显示(立体镜或并排技术)。在这项研究中,我们通过对各种标本类型(骨骼、软组织、神经解剖、区域解剖和专门的 3D 打印测试模型)进行测试,评估了这种方法的可行性。结果表明,获得的 3D 模型具有完整的网格,细节水平高,纹理真实。估计网格和纹理的分辨率分别约为 1mm 和 0.2mm。此外,立体动画在增强深度感知方面既可行又有效。这种方法的简单性和经济性使其成为创建易于逼真的解剖模型并结合立体深度可视化的首选技术。

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