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Applications of advanced signal processing and machine learning in the neonatal hypoxic-ischemic electroencephalography

摘要Perinatal hypoxic-ischemic-encephalopathy significantly contributes to neonatal death and life-long disability such as cerebral palsy. Advances in signal processing and machine learning have provided the re-search community with an opportunity to develop automated real-time identification techniques to detect the signs of hypoxic-ischemic-encephalopathy in larger electroencephalography/amplitude-integrated electroencephalography data sets more easily. This review details the recent achievements, performed by a number of prominent research groups across the world, in the automatic identification and classification of hypoxic-ischemic epileptiform neonatal seizures using advanced signal processing and machine learning techniques. This review also addresses the clinical challenges that current automated techniques face in order to be fully utilized by clinicians, and highlights the importance of upgrading the current clinical bed-side sampling frequencies to higher sampling rates in order to provide better hypoxic-ischemic biomarker detection frameworks. Additionally, the article highlights that current clinical automated epileptiform de-tection strategies for human neonates have been only concerned with seizure detection after the therapeutic latent phase of injury. Whereas recent animal studies have demonstrated that the latent phase of opportu-nity is critically important for early diagnosis of hypoxic-ischemic-encephalopathy electroencephalography biomarkers and although diffcult, detection strategies could utilize biomarkers in the latent phase to also predict the onset of future seizures.

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中国神经再生研究(英文版)

中国神经再生研究(英文版)

2020年15卷2期

222-231页

SCIMEDLINEISTICCSCDCABP

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