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A novel multi-lead ECG personal recognition based on signals functional and structural dependencies using time-frequency representation and evolutionary morphological CNN

机译:一种基于信号功能和结构依赖性的新型多引导ECG个人识别,使用时频表示和进化形态CNN

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Biometric recognition systems have been employed in many aspects of life such as security technologies, data protection, and remote access. Physiological signals, e.g. electrocardiogram (ECG), can potentially be used in biometric recognition. From a medical standpoint, ECG leads have structural and functional dependencies. In fact, precordial ECG leads view the heart from different axial angles, whereas limb leads view it from various coronal angles. This study aimed to design a personal biometric recognition system based on ECG signals by estimating these latent medical variables. To estimate functional dependencies, within-correlation and crosscorrelation in time-frequency domain between ECG leads were calculated and represented in the form of extended adjacency matrices. CNN trees were then introduced through genetic programming for the automated estimation of structural dependencies in extended adjacency matrices. CNN trees perform the deep feature learning process by using structural morphology operators. The proposed system was designed for both closed-set identification and verification. It was then tested on two datasets, i.e. PTB and CYBHi, for performance evaluation. Compared with the state-of-the-art methods, the proposed method outperformed all of them.
机译:生物识别系统已在诸如安全技术,数据保护和远程访问的许多方面使用。生理信号,例如心电图(ECG)可能用于生物识别识别。从医疗的角度来看,ECG导致具有结构和功能依赖性。实际上,前沿ECG引导从不同的轴向角度看着心脏,而肢体引线从各种冠状角度看。本研究旨在通过估计这些潜在医疗变量来设计基于ECG信号的个人生物识别系统。为了估计功能依赖性,在ECG引线之间的时频域中的相关性和跨相关性以扩展邻接矩阵的形式计算并表示。然后通过用于在扩展邻接矩阵中的结构依赖性的自动估计的遗传编程来引入CNN树。 CNN树通过使用结构形态运算符来执行深度特征学习过程。建议的系统是为闭合识别和验证而设计的。然后在两个数据集,即PTB和Cybhi上进行测试,以进行性能评估。与最先进的方法相比,所提出的方法表现出所有的方法。

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