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Three-dimensional surface models of autopsied human brains constructed from multiple photographs by photogrammetry

机译:通过摄影测量从多张照片构建的解剖人体大脑的三维表面模型

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摘要

Virtual three-dimensional (3D) surface models of autopsied human brain hemispheres were constructed by integrating multiple two-dimensional (2D) photographs. To avoid gravity-dependent deformity, formalin-fixed hemispheres were placed on non-refractile, transparent acrylic plates, which allowed us to take 2D photographs from various different angles. Photogrammetric calculations using software (ReCap Pro cloud service, Autodesk, San Rafael, CA, USA) allowed us calculate the 3D surface of each brain hemisphere. Virtual brain models could be moved and rotated freely to allow smooth, seamless views from different angles and different magnifications. When viewing rotating 3D models on 2D screens, 3D aspects of the models were enhanced using motion parallax. Comparison of different brains using this method allowed us to identify disease-specific patterns of macroscopic atrophy, that were not apparent in conventional 2D photographs. For example, we observed frontal lobe atrophy in a progressive supranuclear palsy brain, and even more subtle atrophy in the superior temporal gyrus in amyotrophic lateral sclerosis-frontotemporal lobar degeneration. Thus, our method facilities recognition of gyral atrophy. In addition, it provides a much more powerful and suitable way of visualizing the overall appearance of the brain as a three-dimensional structure. Comparison of normal and diseased brains will allow us to associate different macroscopic changes in the brain to clinical manifestations of various diseases.
机译:通过整合多个二维(2D)照片,构建了经过解剖的人脑半球的虚拟三维(3D)表面模型。为避免重力引起的畸变,将福尔马林固定的半球放置在不折射的透明丙烯酸板上,这使我们可以从不同角度拍摄2D照片。使用软件(ReCap Pro云服务,Autodesk,加利福尼亚州圣拉斐尔,美国)进行摄影测量计算,我们可以计算每个大脑半球的3D表面。虚拟大脑模型可以自由移动和旋转,以实现从不同角度和放大倍数的平滑无缝视图。在2D屏幕上查看旋转的3D模型时,使用运动视差增强了模型的3D方面。使用这种方法比较不同的大脑,使我们能够确定特定于疾病的宏观萎缩模式,这在常规2D照片中并不明显。例如,我们在进行性核上性麻痹脑中观察到额叶萎缩,而在肌萎缩性侧索硬化-额颞叶变性中,颞上回的微妙萎缩。因此,我们的方法有助于识别回旋性萎缩。此外,它提供了一种功能更强大且更合适的方式,可以将大脑的整体外观可视化为三维结构。正常和患病大脑的比较将使我们能够将大脑中不同的宏观变化与各种疾病的临床表现联系起来。

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