首页> 外文会议>International Conference on Medical Image Computing and Computer Assisted Intervention;Conference on Challenge in Adolescent Brain Cognitive Development Neurocognitive Prediction >ABCD Neurocognitive Prediction Challenge 2019: Predicting Individual Residual Fluid Intelligence Scores from Cortical Grey Matter Morphology
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ABCD Neurocognitive Prediction Challenge 2019: Predicting Individual Residual Fluid Intelligence Scores from Cortical Grey Matter Morphology

机译:ABCD神经认知预测挑战赛2019:通过皮质灰色物质形态预测个体残余液体智力得分

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We predicted fluid intelligence from T1-weighted MRI data available as part of the ABCD NP Challenge 2019, using morphological similarity of grey-matter regions across the cortex. Individual structural covariance networks (SCN) were abstracted into graph-theory metrics averaged over nodes across the brain and in data-driven communities/modules. Metrics included degree, path length, clustering coefficient, centrality, rich club coefficient, and small-worldness. These features derived from the training set were used to build various regression models for predicting residual fluid intelligence scores, with performance evaluated both using cross-validation within the training set and using the held-out validation set. Our predictions on the test set were generated with a support vector regression model trained on the training set. We found minimal improvement over predicting a zero residual fluid intelligence score across the sample population, implying that structural covariance networks calculated from Tl-weighted MR imaging data provide little information about residual fluid intelligence.
机译:我们使用整个皮质的灰质区域的形态相似性,根据ABCD NP Challenge 2019的一部分从T1加权MRI数据预测了流体智能。单个结构协方差网络(SCN)被抽象为图论指标,该指标在整个大脑节点上以及在数据驱动的社区/模块中平均。度量包括度,路径长度,聚类系数,中心性,丰富的俱乐部系数和小世界。从训练集中得出的这些特征被用于构建各种回归模型以预测残余流体智力得分,并使用训练集中的交叉验证和保留的验证集来评估性能。我们对测试集的预测是通过在训练集上训练的支持向量回归模型生成的。我们发现在整个样本人群中预测零残留流体智能得分方面没有什么改进,这意味着根据T1加权MR成像数据计算出的结构协方差网络几乎没有提供有关残留流体智能的信息。

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