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Prediction of cognitive and motor outcome of preterm infants based on automatic quantitative descriptors from neonatal MR brain images

机译:基于新生儿MR脑图像的自动定量描述符对早产婴儿的认知和运动结局进行预测

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摘要

This study investigates the predictive ability of automatic quantitative brain MRI descriptors for the identification of infants with low cognitive and/or motor outcome at 2–3 years chronological age. MR brain images of 173 patients were acquired at 30 weeks postmenstrual age (PMA) (n = 86) and 40 weeks PMA (n = 153) between 2008 and 2013. Eight tissue volumes and measures of cortical morphology were automatically computed. A support vector machine classifier was employed to identify infants who exhibit low cognitive and/or motor outcome (<85) at 2–3 years chronological age as assessed by the Bayley scales. Based on the images acquired at 30 weeks PMA, the automatic identification resulted in an area under the receiver operation characteristic curve (AUC) of 0.78 for low cognitive outcome, and an AUC of 0.80 for low motor outcome. Identification based on the change of the descriptors between 30 and 40 weeks PMA (n = 66) resulted in an AUC of 0.80 for low cognitive outcome and an AUC of 0.85 for low motor outcome. This study provides evidence of the feasibility of identification of preterm infants at risk of cognitive and motor impairments based on descriptors automatically computed from images acquired at 30 and 40 weeks PMA.
机译:这项研究调查了自动定量脑部MRI描述符对在2-3岁年龄段认知和/或运动结果低的婴儿的识别能力。在2008年至2013年之间,分别在月经后30周(PMA)(n = 86)和40周PMA(n = 153)采集了173例患者的MR脑图像。自动计算了八个组织体积和皮质形态学指标。采用支持向量机分类器,以鉴定在按Bayley量表评估的2-3岁年龄段,其认知和/或运动结果(<85)低的婴儿。根据PMA在30周时获得的图像,自动识别会导致接收器操作特征曲线(AUC)下的面积为0.78(认知功能低下),而AUC为0.80(运动功能低下)。根据30至40周PMA(n = 66)的描述子变化进行识别,导致认知功能低下的AUC为0.80,运动功能低下的AUC为0.85。这项研究提供了根据从30和40周PMA采集的图像自动计算出的描述符来识别有认知和运动障碍风险的早产婴儿的可行性的证据。

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