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A Comparison of Generative and Discriminative Approaches in Automated Neonatal Seizure Detection

机译:自动新生儿癫痫发作检测中生成和鉴别方法的比较

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摘要

Two systems based on different classifiers are compared for the task of neonatal seizure detection. Support vector machines and Gaussian mixture models are presented as examples of discriminative and generative approaches to classification. The performance of both systems is assessed using a number of metrics, the results of which indicate that both systems are competitive with other detectors in the literature. Finally, misclassified events are analysed, from which specific patterns affecting the performance of the detector are identified.
机译:将基于不同分类器的两个系统进行比较,以获得新生儿癫痫发作检测的任务。支持向量机和高斯混合模型作为分类的鉴别和生成方法的示例。使用许多指标评估两个系统的性能,结果表明两个系统与文献中的其他探测器具有竞争力。最后,分析了错误分类的事件,识别出影响检测器性能的特定模式。

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