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Using the visible human data set for segmentation and tumor removal surgery planning

机译:使用可见人体数据集进行分段和肿瘤去除手术规划

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The MR, CT and anatomical cross-section image data sets, scquired through the Visible Human Project, represent a common reference in various research fields such as the study of human anatomy, treatment planning, modeling in numericla dozimetry and for virtual reality applications in medicine. The usefulness of the sets is much improved by segmenting the raw iamge data and linking it to text-based data, thus creating a 3D anatomical atlas. The segmented sets can be used as a deformable atlas for automatic segmentation of patient specific CT or MR images. This is acheived by deforming the atlas model into the patient model, and linking the text-based data from atlas to achieved by deforming the atlas model into the patient mdoel, and linking the text-based data from atlas to aptient images. Such a deformation is based on mathematical modelling of linear elastic and viscous fluid materials and is very effiicent, but computationally expensive. To simpify it, the volume deformation can be exchanged for 3D surface model matching.An effective algorithm, resulting in 3D model of selected organs/tissues can significantly improve CT or MR scan based diagnostics. We demonstrate how to create a segmented, patient specific 3D model of the brain with a tumor, which can be interactively used by the surgeon for more efficient tumor removal surgery planning.
机译:MR,CT和解剖横截面图像数据集通过可见人体项目,代表了各种研究领域的共同参考,例如人类解剖学,治疗计划,在Numericla Dojetry中的应用和医学虚拟现实应用的研究。通过对原始IAMGE数据进行分割并将其链接到基于文本的数据来创建该集合的有用性很大,从而创建3D解剖图。分段集可以用作可变形的阿特拉斯,用于患者特异性CT或MR图像的自动分割。这通过将ATLAS模型变形到患者模型中,并将基于文本的数据与ATLA联系到通过将ATLAS模型变形到患者MDOEL中来实现,并将基于文本的数据从ATLA连接到APTIENT图像。这种变形是基于线性弹性和粘性流体材料的数学建模,并且非常有效,但计算得昂贵。为了使其柔化,可以为3D表面模型匹配交换音量变形。生效算法,产生所选器官/组织的3D模型可以显着改善基于CT或MR扫描的诊断。我们展示了如何用肿瘤创建脑的细分,患者特异性3D模型,该肿瘤可以由外科医生交互使用,以便更有效地肿瘤去除手术规划。

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