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The application of artificial intelligence to understand the pathophysiological basis of psychogenic nonepileptic seizures

机译:人工智能在心理学癫痫发作的致病性基础上的应用

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摘要

Psychogenic nonepileptic seizures (PNES) are episodes of paroxysmal impairment associated with a range of motor, sensory, and mental manifestations, which perfectly mimic epileptic seizures. Several patterns of neural abnormalities have been described without identifying a definite neurobiological substrate. In this multicenter cross-sectional study, we applied a multivariate classification algorithm on morphological brain imaging metrics to extract reliable biomarkers useful to distinguish patients from controls at an individual level.
机译:心理注意力癫痫发作(PNES)是与一系列电机,感官和心理表现相关的阵发性损伤的剧集,其完全模仿癫痫发作。 已经描述了几种神经异常模式而不识别明确的神经生物学底物。 在该多中心横截面研究中,我们在形态脑成像度量上应用了多变量分类算法,以提取可靠的生物标志物,可用于区分单个水平的控制。

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