Individual identification based on chaotic electrocardiogram signals during muscular exercise

An electrocardiogram (ECG) records changes in the electric potential of cardiac cells using a noninvasive method. Previous studies have shown that each person's cardiac signal possesses unique characteristics. Thus, researchers have attempted to use ECG signals for personal identification. Howe...

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Published inIET biometrics Vol. 3; no. 4; pp. 257 - 266
Main Authors Lin, Shyan-Lung, Chen, Ching-Kun, Lin, Chun-Liang, Yang, Wen-Chan, Chiang, Cheng-Tang
Format Journal Article
LanguageEnglish
Published Stevenage The Institution of Engineering and Technology 01.12.2014
John Wiley & Sons, Inc
Subjects
Online AccessGet full text
ISSN2047-4938
2047-4946
2047-4946
DOI10.1049/iet-bmt.2013.0014

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Abstract An electrocardiogram (ECG) records changes in the electric potential of cardiac cells using a noninvasive method. Previous studies have shown that each person's cardiac signal possesses unique characteristics. Thus, researchers have attempted to use ECG signals for personal identification. However, most studies verify results using ECG signals taken from databases which are obtained from subjects under the condition of rest. Therefore, the extraction and analysis of a subject's ECG typically occurs in the resting state. This study presents experiments that involve recording ECG information after the heart rate of the subjects was increased through exercise. This study adopts the root mean square value, nonlinear Lyapunov exponent, and correlation dimension to analyse ECG data, and uses a support vector machine (SVM) to classify and identify the best combination and the most appropriate kernel function of a SVM. Results show that the successful recognition rate exceeds 80% when using the nonlinear SVM with a polynomial kernel function. This study confirms the existence of unique ECG features in each person. Even in the condition of exercise, chaotic theory can be used to extract specific biological characteristics, confirming the feasibility of using ECG signals for biometric verification.
AbstractList An electrocardiogram (ECG) records changes in the electric potential of cardiac cells using a noninvasive method. Previous studies have shown that each person's cardiac signal possesses unique characteristics. Thus, researchers have attempted to use ECG signals for personal identification. However, most studies verify results using ECG signals taken from databases which are obtained from subjects under the condition of rest. Therefore, the extraction and analysis of a subject's ECG typically occurs in the resting state. This study presents experiments that involve recording ECG information after the heart rate of the subjects was increased through exercise. This study adopts the root mean square value, nonlinear Lyapunov exponent, and correlation dimension to analyse ECG data, and uses a support vector machine (SVM) to classify and identify the best combination and the most appropriate kernel function of a SVM. Results show that the successful recognition rate exceeds 80% when using the nonlinear SVM with a polynomial kernel function. This study confirms the existence of unique ECG features in each person. Even in the condition of exercise, chaotic theory can be used to extract specific biological characteristics, confirming the feasibility of using ECG signals for biometric verification.
Author Lin, Shyan-Lung
Chen, Ching-Kun
Yang, Wen-Chan
Chiang, Cheng-Tang
Lin, Chun-Liang
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Issue 4
Keywords ECG features
cardiac cells
heart rate
support vector machines
correlation dimension
root mean square value
biometric verification
personal identification
SVM
biometrics (access control)
electric potential
electrocardiography
non-invasive method
medical signal processing
chaotic electrocardiogram signals
support vector machine
nonlinear Lyapunov exponent
cardiac signal
polynomial kernel function
muscular exercise
mean square error methods
specific biological characteristics
Lyapunov methods
correlation methods
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Snippet An electrocardiogram (ECG) records changes in the electric potential of cardiac cells using a noninvasive method. Previous studies have shown that each...
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SubjectTerms Biometric identification
biometric verification
Biometrics
biometrics (access control)
cardiac cells
cardiac signal
Chaos theory
chaotic electrocardiogram signals
correlation dimension
correlation methods
Data compression
ECG features
EKG
Electric potential
Electrocardiography
Feasibility studies
Feature recognition
Fourier transforms
Heart
Heart rate
Kernel functions
Liapunov exponents
Lyapunov exponents
Lyapunov methods
mean square error methods
medical signal processing
Morphology
muscular exercise
Neural networks
nonlinear Lyapunov exponent
Nonlinearity
non‐invasive method
personal identification
polynomial kernel function
Polynomials
root mean square value
Signal processing
specific biological characteristics
support vector machine
Support vector machines
SVM
System theory
Time series
Wavelet transforms
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Title Individual identification based on chaotic electrocardiogram signals during muscular exercise
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