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首页> 外文期刊>Journal of computer assisted tomography >An image-processing system for qualitative and quantitative volumetric analysis of brain images.
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An image-processing system for qualitative and quantitative volumetric analysis of brain images.

机译:用于对脑图像进行定性和定量体积分析的图像处理系统。

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摘要

In this work, we developed, implemented, and validated an image-processing system for qualitative and quantitative volumetric analysis of brain images. This system allows the visualization and quantitation of global and regional brain volumes. Global volumes were obtained via an automated adaptive Bayesian segmentation technique that labels the brain into white matter, gray matter, and cerebrospinal fluid. Absolute volumetric errors for these compartments ranged between 1 and 3% as indicated by phantom studies. Quantitation of regional brain volumes was performed through normalization and tessellation of segmented brain images into the Talairach space with a 3D elastic warping model. Retest reliability of regional volumes measured in Talairach space indicated errors of < 1.5% for the frontal, parietal, temporal, and occipital brain regions. Additional regional analysis was performed with an automated hybrid method combining a region-of-interest approach and voxel-based analysis, named Regional Analysis of Volumes Examined in Normalized Space (RAVENS). RAVENS analysis for several subcortical structures showed good agreement with operator-defined volumes. This system has sufficient accuracy for longitudinal imaging data and is currently being used in the analysis of neuroimaging data of the Baltimore Longitudinal Study of Aging.
机译:在这项工作中,我们开发,实施和验证了用于脑图像的定性和定量体积分析的图像处理系统。该系统允许可视化和定量全局和局部大脑体积。通过自动适应性贝叶斯分割技术获得全局体积,该技术将大脑标记为白质,灰质和脑脊髓液。如幻影研究所示,这些隔室的绝对体积误差在1%至3%之间。通过使用3D弹性翘曲模型将分段的脑部图像归一化和镶嵌到Talairach空间中,对区域脑部体积进行量化。重新测试在Talairach空间中测量的区域体积的可靠性表明,额叶,顶叶,颞叶和枕脑区域的误差<1.5%。使用自动混合方法执行其他区域分析,该方法将关注区域方法与基于体素的分析相结合,称为“规范化空间中已检查体积的区域分析”(RAVENS)。对几种皮层下结构的RAVENS分析显示与操作员定义的体积吻合良好。该系统对纵向成像数据具有足够的准确性,目前正用于巴尔的摩纵向纵向研究的神经成像数据分析中。

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