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A shockable rhythm detection algorithm for automatic external defibrillators by combining a slope variability analyzer with a band-pass digital filter

机译:通过将斜率变异性分析仪与带通数字滤波器相结合,可为自动体外除颤器提供一种令人震惊的节奏检测算法

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摘要

To make automatic external defibrillators (AEDs) easy to use by the public who is not familiar with emergency treatment and electrocardiogram (ECG) analysis, it is critical to have an accurate shockable rhythm recognition algorithm. This paper presents a novel compositive algorithm by combining a slope variability analyzer with a band-pass digital filter so as to accurately distinguish shockable rhythms from non-shockable rhythms for automatic external defibrillators (AEDs). A total of 35 ECG records from the widely recognized Creighton University Ventricular Tachyarrhythmia Database (CUDB) were used to test the performance of the proposed algorithm. The obtained sensitivity of 94.2% and the specificity of 96.6% both satisfy requirements by the AHA rules on the arrhythmias detection for AEDs, and show a higher performance comparing with the previous HILB algorithm and the slope variability method only. As a conclusion, the proposed compositive algorithm would potentially provide a useful tool for AED systems with a higher accuracy and lower computation requirements.
机译:为了使不熟悉紧急治疗和心电图(ECG)分析的公众易于使用自动体外除颤器(AED),拥有准确的可电击心律识别算法至关重要。本文提出了一种新颖的综合算法,将斜率变异性分析仪与带通数字滤波器相结合,从而可以准确地区分自动体外除颤器(AED)的可电击节律和不可电击节律。来自广泛认可的Creighton大学室性心律失常数据库(CUDB)的35条ECG记录用于测试该算法的性能。所获得的94.2%的灵敏度和96.6%的特异性均满足AHA规则对AED的心律失常检测的要求,并且仅与以前的HILB算法和斜率变异性方法相比,具有更高的性能。结论是,所提出的综合算法将为AED系统提供一个有用的工具,具有较高的准确性和较低的计算要求。

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