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Localized prediction of tissue outcome in acute ischemic stroke patients using diffusion- and perfusion-weighted MRI datasets

机译:使用扩散和灌注加权MRI数据集的急性缺血性卒中患者组织结果的局部预测

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Background An accurate prediction of tissue outcome in acute ischemic stroke patients is of high interest for treatment decision making. To date, various machine learning models have been proposed that combine multi-parametric imaging data for this purpose. However, most of these machine learning models were trained using voxel information extracted from the whole brain, without taking differences in susceptibility to ischemia into account that exist between brain regions. The aim of this study was to develop and evaluate a local tissue outcome prediction approach, which makes predictions using locally trained machine learning models and thus accounts for regional differences.
机译:背景技术急性缺血性脑卒中患者组织结果的准确预测对于治疗决策具有高兴趣。 迄今为止,已经提出了各种机器学习模型,以为此目的组合多参数成像数据。 然而,大多数这些机器学习模型都使用从整个大脑提取的体素信息训练,而不会对脑区之间存在的遗失缺血的易感性差异。 本研究的目的是开发和评估局部组织结果预测方法,这使得使用当地培训的机器学习模型进行预测,从而考虑区域差异。

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