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PRUNING DATASETS IN DISCRIMINANT ANALYSIS: A DTI STUDY TO SCHIZOPHRENIA

机译:区分分析中的修剪数据集:精神分裂症的DTI研究

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A comparative study is commonly performed by means of pre-defined or expert selected region of interest (ROI)-analysis or voxel based analysis (VBA). In contrast to these methods, correlations within the data can be modeled by using principal component analysis (PCA) and linear discriminant analysis (LDA). The mapping computed by PCA/LDA is displayed to identify the discriminative regions. A technique called ''pruning'' is introduced to iteratively discard misclassified subjects from the cohort. These subjects reside in the region in feature space where the classes are overlapping. As the exact cause of this overlapping is unknown, it is preferable to base the mapping merely on representative prototypes, residing in the nonoverlapping parts of the feature space. After pruning the PCA/LDA mapping, a more pronounced decrease in FA in larger parts of the corpus callosum was observed, compared to conventional VBA
机译:通常通过预定义或专家选择的感兴趣区域(ROI)分析或基于体素的分析(VBA)进行比较研究。与这些方法相比,可以使用主成分分析(PCA)和线性判别分析(LDA)对数据内的相关性进行建模。显示由PCA / LDA计算的映射,以识别区分区域。引入了一种称为“修剪”的技术,以迭代地从同类群组中丢弃分类错误的主题。这些主题位于类重叠的要素空间中的区域中。由于这种重叠的确切原因是未知的,因此最好仅将映射基于具有特征空间的非重叠部分中的代表性原型。修剪PCA / LDA映射后,与常规VBA相比,在larger体的较大部分观察到FA的下降更为明显

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