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An adapting system for heartbeat classification minimising user input

机译:一种适用于心跳分类的自适应系统,可最大程度地减少用户输入

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An adaptive system for the processing of the electrocardiogram (ECG) for the classification of heartbeats into beat classes that seeks to minimize the required input from the user is presented. A first set of beat annotations is produced by the system by processing an incoming recording with a global-classifier. The beat annotations are then ranked by a confidence measure calculated from the posterior probabilities estimates associated with each beat classification. An expert then validates and if necessary corrects a fraction of the least confident beats of the recording. The system then adapts by first training a local-classifier using the newly annotated beats and combines this with the global-classifier to produce an adapted classification system. The adapted system is then used to update beat annotations. Our results show that we can achieve a significant boost in classification performance of the system by using a small number of beats for adaptation.
机译:提出了一种自适应系统,该系统用于处理心电图(ECG),以将心跳分类为节拍类别,该系统试图最大程度地减少来自用户的所需输入。系统通过使用全局分类器处理传入的记录来产生第一组拍子注释。然后,通过根据与每个拍子分类相关联的后验概率估计值计算出的置信度来对拍子注释进行排序。然后,专家会验证并在必要时纠正录音中最不可靠的节拍的一小部分。然后,系统首先通过使用新注释的节拍训练局部分类器来进行自适应,并将其与全局分类器组合以生成适应的分类系统。然后,改编的系统用于更新节拍注释。我们的结果表明,通过使用少量的节拍进行自适应,我们可以显着提高系统的分类性能。

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