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A novel feature extraction method in ECG biometrics

机译:心电图生物特征识别的一种新方法

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摘要

Over the last few years, the Electrocardiogram (ECG) was introduced as a powerful biometric modality for human authentication. Indeed, ECG has some characteristics specific to each individual. In this paper we present an authentication system based on the ECG signal. We are particularly interested in the feature extraction step where we propose new approach based on the slopes and the angles of the ECG signal. The neural network is used for the classification step. The results have been validated on a database related to 100 persons. We recorded a recognition rate (RR) equals 96.44% which is an encouraging result relative to the size of the database.
机译:在过去的几年中,心电图(ECG)被引入作为一种强大的生物识别方式,用于人类认证。实际上,心电图具有针对每个人的一些特征。在本文中,我们提出了一种基于ECG信号的身份验证系统。我们对特征提取步骤特别感兴趣,在该步骤中,我们基于ECG信号的斜率和角度提出了一种新方法。神经网络用于分类步骤。结果已在与100个人相关的数据库上进行了验证。我们记录的识别率(RR)等于96.44%,相对于数据库而言,这是令人鼓舞的结果。

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