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A new methodology for assessment of the performance of heartbeat classification systems

机译:评估心跳分类系统性能的新方法

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Background The literature presents many different algorithms for classifying heartbeats from ECG signals. The performance of the classifier is normally presented in terms of sensitivity, specificity or other metrics describing the proportion of correct versus incorrect beat classifications. From the clinician's point of view, such metrics are however insufficient to rate the performance of a classifier. Methods We propose a new methodology for the presentation of classifier performance, based on Bayesian classification theory. Our proposition lets the investigators report their findings in terms of beat-by-beat comparisons, and defers the role of assessing the utility of the classifier to the statistician. Evaluation of the classifier's utility must be undertaken in conjunction with the set of relative costs applicable to the clinicians' application. Such evaluation produces a metric more tuned to the specific application, whilst preserving the information in the results. Results By way of demonstration, we propose a set of costs, based on clinical data from the literature, and examine the results of two published classifiers using our method. We make recommendations for reporting classifier performance, such that this method can be used for subsequent evaluation. Conclusion The proportion of misclassified beats contains insufficient information to fully evaluate a classifier. Performance reports should include a table of beat-by-beat comparisons, showing not-only the number of misclassifications, but also the identity of the classes involved in each inaccurate classification.
机译:背景技术文献提出了许多用于根据ECG信号对心跳进行分类的算法。分类器的性能通常以敏感性,特异性或其他指标来描述,这些指标描述了正确或不正确的心跳分类的比例。从临床医生的角度来看,这些度量标准不足以对分类器的性能进行评估。方法我们基于贝叶斯分类理论,提出了一种新的分类器性能表示方法。我们的主张使研究者可以逐项比较的方式报告他们的发现,并向统计学家推迟评估分类器效用的作用。对分类器效用的评估必须结合适用于临床医生应用的一组相对成本进行。这种评估产生了一个更适合特定应用程序的度量,同时保留了结果中的信息。结果通过论证,我们根据文献的临床数据提出了一套费用,并使用我们的方法检查了两个已公开分类器的结果。我们提出报告分类器性能的建议,以便此方法可用于后续评估。结论错误分类的节拍比例包含的信息不足,无法充分评估分类器。绩效报告应包括逐项比较表,不仅显示错误分类的数量,还应显示每个不准确分类中涉及的类的标识。

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