Literature DB >> 14728222

A neuro-fuzzy approach to classification of ECG signals for ischemic heart disease diagnosis.

Victor -Emil Neagoe1, Iuliana -Florentina Iatan, Sorin Grunwald.   

Abstract

The paper focuses on the neuro-fuzzy classifier called Fuzzy-Gaussian Neural Network (FGNN) to recognize the ECG signals for Ischemic Heart Disease (IHD) diagnosis. The proposed ECG processing cascade has two main stages: (a) Feature extraction from the QRST zone of ECG signals using either the Principal Component Analysis (PCA) or the Discrete Cosine Transform (DCT); (b) Pattern classification for IHD diagnosis using the FGNN. We have performed the software implementation and have experimented the proposed neuro-fuzzy model for IHD diagnosis. We have used an ECG database of 40 subjects, where 20 subjects are IHD patients and the other 20 are normal ones. The best performance has been of 100% IHD recognition score. The result is exciting as much as we have used only one lead (V5) of ECG records as input data, while the current diagnosis approaches require the set of 12 lead ECG signals!

Entities:  

Mesh:

Year:  2003        PMID: 14728222      PMCID: PMC1480049     

Source DB:  PubMed          Journal:  AMIA Annu Symp Proc        ISSN: 1559-4076


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Authors:  G Bortolan; C Brohet; S Fusaro
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  2 in total
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3.  Early classification of pathological heartbeats on wireless body sensor nodes.

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4.  An approach on the implementation of full batch, online and mini-batch learning on a Mamdani based neuro-fuzzy system with center-of-sets defuzzification: Analysis and evaluation about its functionality, performance, and behavior.

Authors:  Sukey Nakasima-López; Juan R Castro; Mauricio A Sanchez; Olivia Mendoza; Antonio Rodríguez-Díaz
Journal:  PLoS One       Date:  2019-09-05       Impact factor: 3.240

  4 in total

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