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首页> 外文期刊>Journal of applied mathematics >Personal identification based on vectorcardiogram derived from limb leads electrocardiogram
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Personal identification based on vectorcardiogram derived from limb leads electrocardiogram

机译:基于肢体导联心电图得出的心电图的个人识别

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摘要

We propose a new method for personal identification using the derived vectorcardiogram (dVCG), which is derived from the limb leads electrocardiogram (ECG). The dVCG was calculated from the standard limb leads ECG using the precalculated inverse transform matrix. Twenty-one features were extracted from the dVCG, and some or all of these 21 features were used in support vector machine (SVM) learning and in tests. The classification accuracy was 99.53%, which is similar to the previous dVCG analysis using the standard 12-lead ECG. Our experimental results show that it is possible to identify a person by features extracted from a dVCG derived from limb leads only. Hence, only three electrodes have to be attached to the person to be identified, which can reduce the effort required to connect electrodes and calculate the dVCG.
机译:我们提出了一种使用衍生向量心电图(dVCG)进行个人识别的新方法,该向量源自肢体导联心电图(ECG)。 dVCG是使用预先计算的逆变换矩阵从标准肢体心电图计算得出的。从dVCG中提取了21个特征,并将这21个特征中的一些或全部用于支持向量机(SVM)学习和测试中。分类准确性为99.53%,与先前使用标准12导联ECG的dVCG分析相似。我们的实验结果表明,有可能通过仅从肢体导联衍生的dVCG中提取的特征来识别人。因此,仅三个电极必须附接到要识别的人,这可以减少连接电极和计算dVCG所需的工作量。

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