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The Effect of the Normalization Strategy on Voxel-Based Analysis of DTI Images: A Pattern Recognition Based Assessment

机译:标准化策略对DTI图像的基于体素的分析:基于模式识别的评估

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Quantitative analysis on diffusion tensor imaging (DTI) has shown be useful in the study of disease-related degeneration. More and more studies perform voxel-by-voxel comparisons of fractional anisotropy (FA) values, aiming at detecting white matter alterations. Overall, there is no agreement about how the normalization stage should be performed. The purpose of this study was to evaluate the effect of the normalization strategy on voxel-based analysis of DTI images, using the performance of a classification approach as objective measure of normalization quality. This is achieved by using a Support Vector Machine (SVM) which constructs a decision surface that allows binary classification with two types of regions, generated after a statistical evaluation of the grey level values of regions detected as statistically significant in a FA analysis.
机译:对扩散张量成像(DTI)的定量分析显示在研究疾病相关变性的研究中是有用的。越来越多的研究表现了分数各向异性(FA)值的逐个体素比较,旨在检测白质改变。总的来说,关于如何执行标准化阶段的情况。本研究的目的是评估正常化策略对DTI图像的基于体素的分析的影响,使用分类方法的性能作为归一化质量的客观度量。这是通过使用支持向量机(SVM)来实现的,该支持向量机(SVM)构造允许具有两种类型的区域的二进制分类,在对FA分析中被检测到的区域的灰度值值的灰度评估之后生成的统计评估。

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