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首页> 外文期刊>NeuroImage >An intensity consistent filtering approach to the analysis of deformation tensor derived maps of brain shape.
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An intensity consistent filtering approach to the analysis of deformation tensor derived maps of brain shape.

机译:一种强度一致过滤方法,用于分析变形张量派生的大脑形状图。

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Deformation tensor morphometry makes use of the derivatives of spatial transformations between anatomies, to provide highly localized volumetric maps of relative anatomical size. The analysis of such maps, however, has the challenge of describing the data in a way that allows the spatial scale and extent of the local shape properties to match those induced by the disease process being studied. This study examines an approach to the spatial filtering of transformation Jacobian maps created in multisubject studies of brain anatomy, which constrains the filter neighborhood within common structural boundaries present in the spatially normalized image data. The filtering incorporates information derived from the spatial normalization process, using a statistical framework to introduce a measure of uncertainty in local regional intensity correspondence following spatial normalisation. The proposed filtering approach is compared to the use of spatially invariant Gaussian filtering in the analysis of Jacobian determinant maps of brain shape and shape change in Alzheimer's disease and normal aging. Results show significantly improved delineation of fine scale patterns of shape difference (in cross-sectional studies) and shape change (from multiple serial magnetic resonance imaging studies).
机译:变形张量形态学利用了解剖结构之间空间变换的导数,以提供相对解剖结构尺寸的高度局部化的体积图。然而,这种地图的分析具有以允许局部形状特性的空间尺度和范围匹配由正在研究的疾病过程引起的那些的方式描述数据的挑战。这项研究探讨了在大脑解剖结构的多主题研究中创建的变换Jacobian映射的空间过滤方法,该方法将过滤器邻域限制在空间归一化图像数据中存在的常见结构边界内。过滤合并了从空间归一化过程中获得的信息,使用统计框架在空间归一化之后引入了对局部区域强度​​对应关系的不确定性的度量。将拟议的滤波方法与空间不变高斯滤波在分析大脑形状和雅兹海默氏病和正常衰老的形状变化的雅可比行列式图时进行了比较。结果显示,形状差异(在横截面研究中)和形状变化(来自多个系列磁共振成像研究)的精细比例模式的描绘得到了显着改善。

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