首页> 外文会议>18th International Conference on Information Processing in Medical Imaging IPMI 2003 Jul 20-25, 2003 Ambleside, UK >Knowledge-Driven Automated Extraction of the Human Cerebral Ventricular System from MR Images
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Knowledge-Driven Automated Extraction of the Human Cerebral Ventricular System from MR Images

机译:知识驱动的MR图像自动提取人脑心室系统

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This work presents an efficient and automated method to extract the human cerebral ventricular system from MRI driven by anatomic knowledge. The ventricular system is divided into six three-dimensional regions; six ROIs are defined based on the anatomy and literature studies regarding variability of the cerebral ventricular system. The distribution histogram of radiological properties is calculated in each ROI, and the intensity thresholds for extracting each region are automatically determined. Intensity inhomogeneities are accounted for by adjusting intensity threshold to match local situation. The extracting method is based on region-growing and anatomical knowledge, and is designed to include all ventricular parts, even if they appear unconnected on the image. The ventricle extraction method was implemented on the Window platform using C++, and was validated qualitatively on 30 MRI studies with variable parameters.
机译:这项工作提出了一种高效且自动化的方法,以解剖学知识为驱动力,从MRI中提取人脑心室系统。心室系统分为六个三维区域。根据解剖学和有关脑室系统变异性的文献研究,定义了六个ROI。在每个ROI中计算放射特性的分布直方图,并自动确定用于提取每个区域的强度阈值。强度不均匀性是通过调整强度阈值以匹配当地情况来解决的。提取方法基于区域增长和解剖学知识,并且被设计为包括所有心室部位,即使它们在图像上看起来没有连接。心室提取方法是在Windows平台上使用C ++实现的,并在30项具有可变参数的MRI研究中得到了定性验证。

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