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首页> 外文期刊>Journal of Engineering and Science in Medical Diagnostics and Therapy >A Novel QT-Interval Analysis Method Based on Continuous Wavelet Transform and Philips Algorithm
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A Novel QT-Interval Analysis Method Based on Continuous Wavelet Transform and Philips Algorithm

机译:基于小说QT-Interval分析方法连续小波变换和飞利浦算法

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QT surveillance is the most vital appliance to detect the possibility of sudden death sourced by using pro-arrhythmic drugs treating abnormal conditions in the heart. The repolarization of ventricles makes QT interval surveillance difficult since noisy conditions and individual cardiac situations. Besides, an automated QT algorithm is crucial due to a manual QT measurement with some disadvantages such as fatigue condition in reading long records. In this study, a fully novel automated method combining Continuous Wavelet Transform and Philips method was established to perform QT interval analysis. Electrocardiogram recordings were obtained from PhyisoNet database marked by manual and standard automated methods. The proposed algorithm had scores of 15.46 and 11.87 millisecond mean error with 11.85 and 9.91 millisecond standard deviation in terms of gold and silver standards, respectively. Also, the entire QT database was utilized in order to test the algorithm performance with the score of 12.89 and 9.76 millisecond mean and standard deviation errors, respectively. The present algorithm performance had scores of −0.21 ± 7.81 at golden standard, and −4.10 ± 18.21 millisecond error for the whole QT database tests, respectively. The proposed algorithm is attained to more stable and robust results with a higher performance than the previous comparable studies.
机译:QT监测是最重要的设备发现猝死的可能性的使用pro-arrhythmic药物治疗异常心的条件。心室使QT间隔监测困难从嘈杂的环境和个人心脏的情况。由于手工QT算法是至关重要的测量等一些缺点疲劳条件在阅读长记录。这项研究中,一个完全新颖的自动化方法结合连续小波变换和飞利浦方法执行QT成立区间分析。PhyisoNet从数据库得到的吗手册和标准的自动化方法。算法15.46和11.87的分数毫秒平均误差为11.85和9.91毫秒标准差的黄金和银的标准,分别。整个QT数据库是为了测试使用算法的性能得分为12.89和9.76毫秒平均值和标准偏差错误,分别。表现在黄金大量−0.21±7.81标准误差和−4.10±18.21毫秒整个QT数据库测试,分别。算法更加稳定和实现健壮的结果相比具有更高的性能以前类似的研究。

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