A new ventricular fibrillation detection algorithm for automated external defibrillators

A. Amann, R. Tratnig, K. Unterkofler
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引用次数: 61

Abstract

A pivotal component in AEDs is the detection of ventricular fibrillation by means of appropriate detection algorithms. In scientific literature there exists a wide variety of methods and ideas for handling this task. These algorithms should have a high detection quality, be easily implementable, and work in real time in an AED. Testing of these algorithms should be done by using a large amount of annotated data under equal conditions. For our investigation we simulated a continuous analysis by selecting the data in steps of one second without any preselection. We used the BIH-MIT arrhythmia, the CU, and the AHA database. For a new ventricular fibrillation detection algorithm we calculated the sensitivity, specificity, and the area under its receiver operating characteristic curve (ROC) and compared these values with the results from an earlier investigation of several different ventricular fibrillation detection algorithms. This new algorithm is based on the Hilbert transform and outperforms all other investigated algorithms
一种新的自动体外除颤器心室颤动检测算法
aed的一个关键组成部分是通过适当的检测算法检测心室颤动。在科学文献中,有各种各样的方法和想法来处理这个任务。这些算法应具有较高的检测质量,易于实现,并在AED中实时工作。这些算法的测试应该通过在同等条件下使用大量带注释的数据来完成。在我们的调查中,我们模拟了一个连续的分析,在没有任何预选的情况下,以一秒钟的步骤选择数据。我们使用了BIH-MIT心律失常、CU和AHA数据库。对于一种新的心室颤动检测算法,我们计算了其灵敏度、特异性和接受者工作特征曲线(ROC)下的面积,并将这些值与早期几种不同心室颤动检测算法的研究结果进行了比较。该算法基于希尔伯特变换,优于已有的算法
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