DECISION SUPPORT SYSTEM FOR ARRHYTHMIA BEATS USING ECG SIGNALS WITH DCT, DWT AND EMD METHODS: A COMPARATIVE STUDY

被引:21
作者
Desai, Usha [1 ,2 ]
Martis, Roshan Joy [3 ]
Nayak, C. Gurudas [4 ]
Seshikala, G. [2 ]
Sarika, K. [1 ]
Shetty, Ranjan K. [5 ]
机构
[1] NMAM Inst Technol, Dept Elect & Commun Engn, Udupi 574110, Karnataka, India
[2] REVA Univ, Sch Elect & Commun Engn, Bengaluru 560064, India
[3] St Joseph Engn Coll, Dept Elect & Commun Engn, Mangaloru 575028, India
[4] Manipal Univ, MIT, Dept Instrumentat & Control Engn, Manipal 576104, Karnataka, India
[5] Manipal Univ, Kasturba Med Coll, Dept Cardiol, Manipal 576104, Karnataka, India
关键词
Preprocessing; feature extraction; dimensionality reduction; ANOVA; empirical mode decomposition; Cohen's kappa statistic; class-specific accuracy; EMPIRICAL MODE DECOMPOSITION; INDEPENDENT COMPONENT ANALYSIS; DISCRETE WAVELET TRANSFORM; RATE-VARIABILITY SIGNALS; NEURAL-NETWORKS; ELECTROCARDIOGRAM SIGNALS; EIGENVECTOR METHODS; NONLINEAR-ANALYSIS; CARDIAC HEALTH; CLASSIFICATION;
D O I
10.1142/S0219519416400121
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Electrocardiogram (ECG) signal is a non-invasive method, used to diagnose the patients with cardiac abnormalities. The subjective evaluation of interval and amplitude of ECG by physician can be tedious, time consuming, and susceptible to observer bias. ECG signals are generated due to the excitation of many cardiac myocytes and hence resultant signals are non-linear in nature. These subtle changes can be well represented and discriminated in transform and non-linear domains. In this paper, performance of Discrete Cosine Transform (DCT), Discrete Wavelet Transform (DWT) and Empirical Mode Decomposition (EMD) methods are compared for automated diagnosis of five classes namely Non-ectopic (N), Supraventricular ectopic (S), Ventricular ectopic (V), Fusion (F) and Unknown (U) beats. Six different approaches: (i) Principal Components (PCs) on DCT, (ii) Independent Components (ICs) on DCT, (iii) PCs on DWT, (iv) ICs on DWT, (v) PCs on EMD and (vi) ICs on EMD are employed in this work. Clinically significant features are selected using ANOVA test (p < 0: 0001) and fed to k-Nearest Neighbor (k-NN) classifier. We have obtained a classification accuracy of 99.77% using ICs on DWT method. Consistency of performance is evaluated using Cohen's kappa statistic. Developed approach is robust, accurate and can be employed for mass diagnosis of cardiac healthcare.
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页数:19
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