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Automatic construction of an attributed relational graph representing the cortex topography using homotopic transformations

机译:使用同位变换自动构建表示皮质地形的属性关系图

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Abstract: We propose an algorithm allowing the construction of a high level representation of the cortical topography from a T1-weighted 3D MR image. This representation is an attributed relational graph (ARG) inferred from the 3D skeleton of the object made up of the union of gray matter and cerebro-spinal fluid enclosed in the brain hull. In order to increase the robustness of the skeletonization, topological and regularization constraints are included in the segmentation process using an original method: the homotopically deformable regions. This method is halfway between deformable contour and Markovian segmentation approaches. The 3D skeleton is segmented in simple surfaces (SSs) constituting the ARG nodes (mainly sulcus parts). The ARG relations are of two types: first, the SSs pairs connected in the skeleton; second, the SSs pairs delimiting a gyrus. The described algorithm has been developed in the frame of a project aiming at the automatic detection and recognition of the main cortical sulci. Indeed, the ARG is a synthetic representation of all the information required by the sulcus identification. This project will contribute to the development of new methodologies for the human brain functional mapping. !27
机译:摘要:我们提出了一种算法,该算法允许从T1加权3D MR图像构造皮质地形的高层表示。此表示形式是一个属性关系图(ARG),它是从对象的3D骨架推断出来的,该对象由灰质和封闭在脑壳中的脑脊髓液的结合体组成。为了提高骨架化的鲁棒性,使用原始方法(同位可变形区域)在分割过程中包括拓扑和正则化约束。该方法介于可变形轮廓和马尔可夫分割方法之间。将3D骨架分割为构成ARG节点(主要是沟部分)的简单表面(SS)。 ARG关系有两种类型:第一,在骨架中连接的SS对。其次,SS对对界定回旋。所描述的算法是在旨在自动检测和识别主要皮质沟的项目框架中开发的。实际上,ARG是沟识别所需的所有信息的综合表示。该项目将有助于开发人脑功能映射的新方法。 !27

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