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Clinical accuracy QRS detector with automatic parameter adjustment in an autonomous, real-time physiologic monitor

机译:具有自动参数调整功能的临床准确性QRS检测器,可自动进行实时生理监测

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This paper presents a computationally and temporal data-compact QRS complex detection algorithm useful in embedded real-time electrocardiogram (ECG) waveform analysis. The aim of the compact algorithms is to provide high sensitivity and specificity, i.e. diagnostically useful QRS waveform detection, in a continuous ambulatory monitor setting. The proposed detector uses a multi-level approach: QRS highlighting by means of a Truncated Discrete Time Stockwell Transform (TDTST), peak discrimination, and a trained Neural Network to reduce the number of false positive QRS detections. An optimization method is presented that automatically adjust the detector's parameters to minimize the computational cost. Results demonstrate that the compact TDTST algorithm exhibits high QRS detection accuracy, an error rate of 0.31%, and remains applicable to real-time embedded physiologic ambulatory monitors.
机译:本文提出了一种计算和时间数据紧凑的QRS复杂检测算法,可用于嵌入式实时心电图(ECG)波形分析。紧凑算法的目的是在连续的动态监护仪设置中提供高灵敏度和特异性,即对诊断有用的QRS波形检测。拟议的检测器采用多级方法:借助截断离散时间斯托克韦尔变换(TDTST)进行QRS高亮显示,峰值鉴别和经过训练的神经网络,以减少误报QRS检测的次数。提出了一种优化方法,该方法可以自动调整检测器的参数以最大程度地减少计算成本。结果表明,紧凑型TDTST算法具有较高的QRS检测精度,0.31%的错误率,并且仍然适用于实时嵌入式生理动态监控器。

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