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Predicting the neurodevelopmental outcome in newborns with hypoxic-ischaemic injury

机译:预测缺氧缺血性损伤新生儿的神经发育结局

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The prediction of outcome in newborns with hypoxic ischemic encephalopathy (HIE) is a problematic task. Here, the ability of a combination of clinical, heart rate and EEG measures to predict outcome at 2 years is investigated. One hour of EEG and ECG recordings were obtained from newborns 24 hours after birth. Each newborn was reassessed at 24 months to investigate their neurodevelopmental outcome. From the EEG and ECG recordings, a set of 12 features was extracted. To classify each baby's outcome this data, along with clinical information was fed to a support vector machine. On a per patient basis an ROC area of 0.768 was achieved with 73.68% of newborns being assigned the correct outcome. Overall, this system presents a promising step towards the use of multimodal data for the prediction of neurodevelopmental outcome in newborns with HIE.
机译:缺氧缺血性脑病(HIE)新生儿结局的预测是一个有问题的任务。在这里,研究了结合临床,心率和脑电图指标来预测2年结局的能力。出生后24小时从新生儿获得1小时的EEG和ECG记录。每个新生儿在24个月时都进行了重新评估,以调查他们的神经发育结局。从EEG和ECG记录中,提取了12个特征集。为了对每个婴儿的结局进行分类,将该数据以及临床信息一起馈入支持向量机。在每位患者的基础上,ROC面积达到0.768,为73.68%的新生儿分配了正确的结局。总体而言,该系统为使用多模态数据预测HIE新生儿的神经发育结局提供了一个有希望的步骤。

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