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Intracranial Volume Quantification from 3D Photography

机译:来自3D摄影的颅内体积量化

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3D photography offers non-invasive, radiation-free, and anesthetic-free evaluation of craniofacial morphology. However, intracranial volume (ICV) quantification is not possible with current non-invasive imaging systems in order to evaluate brain development in children with cranial pathology. The aim of this study is to develop an automated, radiation-free framework to estimate ICV. Pairs of computed tomography (CT) images and 3D photographs were aligned using registration. We used the real ICV calculated from the CTs and the head volumes from their corresponding 3D photographs to create a regression model. Then, a template 3D photograph was selected as a reference from the data, and a set of landmarks defining the cranial vault were detected automatically on that template. Given the 3D photograph of a new patient, it was registered to the template to estimate the cranial vault area. After obtaining the head volume, the regression model was then used to estimate the ICV. Experiments showed that our volume regression model predicted ICV from head volumes with an average error of 5.81 ± 3.07% and a correlation (R~2) of 0.96. We also demonstrated that our automated framework quantified ICV from 3D photography with an average error of 7.02 ± 7.76%, a correlation (R~2) of 0.94, and an average estimation error for the position of the cranial base landmarks of 11.39 ± 4.3 mm.
机译:3D摄影提供非侵入性,无辐射和无麻的颅面形态学评估。然而,目前的非侵入性成像系统是不可能的颅内体积(ICV)定量,以评估颅脑病理学儿童的脑发育。本研究的目的是开发一种自动化的无辐射框架来估计ICV。使用注册对齐计算机断层扫描(CT)图像和3D照片。我们使用来自CTS的真实ICV和来自相应的3D照片的头部卷来创建回归模型。然后,选择模板3D照片作为来自数据的参考,并且在该模板上自动检测定义颅Vault的一组地标。鉴于新患者的3D照片,它已经注册到模板以估计颅穹窿区域。在获得头部体积之后,然后使用回归模型来估计ICV。实验表明,我们的体积回归模型从头部量预测ICV,平均误差为5.81±3.07%,相关性(R〜2)为0.96。我们还证明,我们的自动框架从3D摄影中量化了ICV,平均误差为7.02±7.76%,一个0.94的相关性(R〜2),以及颅底位置的平均估计误差为11.39±4.3mm 。

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