Max Planck Institute for Human Cognitive and Brain Sciences, Leipzig, Germany.
Leipzig University of Applied Sciences, Leipzig, Germany.
Magn Reson Med. 2019 Mar;81(3):2090-2105. doi: 10.1002/mrm.27508. Epub 2018 Sep 19.
Simulating the interaction of the human body with electromagnetic fields is an active field of research. Individualized models are increasingly being used, as anatomical differences affect the simulation results. We introduce a processing pipeline for creating individual surface-based models of the human head and torso for application in simulation software based on unstructured grids. The pipeline is designed for easy applicability and is publicly released on figshare.
The pipeline covers image acquisition, segmentation, generation of segmentation masks, and surface mesh generation of the single, external boundary of each structure of interest. Two gradient-echo sequences are used for image acquisition. Structures of the head and body are segmented using several atlas-based approaches. They consist of bone/skull, subarachnoid cerebrospinal fluid, gray matter, white matter, spinal cord, lungs, the sinuses of the skull, and a combined class of all other structures including skin. After minor manual preparation, segmentation images are processed to segmentation masks, which are binarized images per segmented structure free of misclassified voxels and without an internal boundary. The proposed workflow is applied to 2 healthy subjects.
Individual differences of the subjects are well represented. The models are proven to be suitable for simulation of the RF electromagnetic field distribution.
Image segmentation, creation of segmentation masks, and surface mesh generation are highly automated. Manual interventions remain for preparing the segmentation images prior to segmentation mask generation. The generated surfaces exhibit a single boundary per structure and are suitable inputs for simulation software.
模拟人体与电磁场的相互作用是一个活跃的研究领域。由于解剖差异会影响模拟结果,因此越来越多地使用个性化模型。我们引入了一种用于创建基于人体表面的单个头部和躯干模型的处理管道,以便在基于非结构网格的模拟软件中应用。该管道设计易于应用,并在 figshare 上公开发布。
该管道涵盖了图像采集、分割、分割掩模生成以及每个感兴趣结构的单个外部边界的表面网格生成。使用两种梯度回波序列进行图像采集。使用几种基于图谱的方法对头部和身体结构进行分割。它们包括骨/颅骨、蛛网膜下腔脑脊液、灰质、白质、脊髓、肺、颅骨窦以及包括皮肤在内的所有其他结构的组合类别。经过少量手动准备,分割图像被处理为分割掩模,这是每个分割结构的二进制图像,没有分类错误的体素,也没有内部边界。该工作流程应用于 2 名健康受试者。
受试者的个体差异得到了很好的体现。该模型被证明适合于射频电磁场分布的模拟。
图像分割、分割掩模生成和表面网格生成高度自动化。在生成分割掩模之前,仍需要手动干预来准备分割图像。生成的表面具有每个结构的单个边界,是模拟软件的合适输入。