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首页> 外文期刊>Journal of medical engineering & technology >QRS complex detection based on simple robust 2-D pictorial-geometrical feature
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QRS complex detection based on simple robust 2-D pictorial-geometrical feature

机译:基于简单鲁棒的二维图形几何特征的QRS复杂检测

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摘要

In this paper a heuristic method aimed for detecting of QRS complexes without any pre-process was developed. All the methods developed in previous studies were used pre-process, the most novelty of this study was suggesting a simple method which did not need any pre-process. Toward this objective, a new simple 2-D geometrical feature space was extracted from the original electrocardiogram (ECG) signal. In this method, a sliding window was moved sample-by-sample on the pre-processed ECG signal. During each forward slide of the analysis window an artificial image was generated from the excerpted segment allocated in the window. Then, a geometrical feature extraction technique based on curve-length and angle of highest point was applied to each image for establishment of an appropriate feature space. Afterwards the K-Nearest Neighbors (KNN), Artificial Neural Network (ANN) and Adaptive Network Fuzzy Inference Systems (ANFIS) were designed and implemented to the ECG signal. The proposed methods were applied to DAY general hospital high resolution holter data. For detection of QRS complex the average values of sensitivity Se=99.93% and positive predictivity P+=99.92% were obtained.
机译:本文提出了一种无需任何预处理即可检测QRS络合物的启发式方法。先前研究中开发的所有方法均采用了预处理,这项研究的新颖之处在于它提出了一种无需任何预处理的简单方法。为了实现这一目标,从原始心电图(ECG)信号中提取了一个新的简单二维几何特征空间。在此方法中,在预处理的ECG信号上逐个样本移动滑动窗口。在分析窗口的每个前向滑动期间,从窗口中分配的摘录片段中生成人工图像。然后,将基于曲线长度和最高点角度的几何特征提取技术应用于每个图像,以建立适当的特征空间。随后,设计了K最近邻(KNN),人工神经网络(ANN)和自适应网络模糊推理系统(ANFIS)并将其应用于ECG信号。拟议的方法应用于DAY综合医院高分辨率动态心电图数据。为了检测QRS络合物,获得了灵敏度Se = 99.93%和阳性预测性P + = 99.92%的平均值。

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