首页> 外文会议>Visualization in Biomedical Computing 1994 >Dual probabilistic classifier for three-dimensional neuroimaging from MRI data
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Dual probabilistic classifier for three-dimensional neuroimaging from MRI data

机译:从MRI数据进行三维神经成像的双概率分类器

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Abstract: The paper addresses 3D neuroimaging from MRI data by using a dual probabilistic classifier. The goals are: to enable to see thru the scalp and skull in order to observe the cortical surface and brain deep structures, to achieve a correct appearance of gyration, and to provide tools easy to use by the medical professional. MRI head data is automatically segmented into two regions: the brain (along with some subarachnoid structures and some pare of the outer CSF filling the sulci and fissures) and the outer structures (including the scalp, skull marrow, dura mater). The brain and the outer structures are classified separately using a probabilistic classifier. A new volume is created so as to eliminate the density overlap between the brain and the outer structures. Color and opacity transfer functions suitable to render the volume are generated automatically based on the density probability plots for both regions. Preliminary results are discussed. !56
机译:摘要:本文通过使用双概率分类器解决了MRI数据中的3D神经成像问题。目标是:能够透视头皮和头骨,以观察皮层表面和大脑的深层结构,获得正确的旋转外观,并提供易于由医疗专业人员使用的工具。 MRI头部数据会自动分为两个区域:大脑(以及一些蛛网膜下腔结构和外脑脊液的某些部分,充满了脑沟和裂隙)和外部结构(包括头皮,颅骨,硬脑膜)。使用概率分类器分别对大脑和外部结构进行分类。创建了一个新的体积,以消除大脑与外部结构之间的密度重叠。根据两个区域的密度概率图自动生成适合渲染体积的颜色和不透明度传递函数。讨论了初步结果。 !56

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