|Table of Contents|

Identity Recognition Using Heart Sound Based on CPSO-LSSVM(PDF)

南京师范大学学报(工程技术版)[ISSN:1006-6977/CN:61-1281/TN]

Issue:
2013年01期
Page:
68-
Research Field:
Publishing date:

Info

Title:
Identity Recognition Using Heart Sound Based on CPSO-LSSVM
Author(s):
Liu JiajiaZhou HongbiaoJu Yong
(1.School of Electrical and Automation Engineering,Nanjing Normal University,Nanjing 210042,China) (2.Faculty of Electronic and Electrical Engineering,Huaiyin Institute of Techology,Huaian 223003,China)
Keywords:
heart soundidentity recognitioncultural particle swarm optimizationleast squares support vector machineempirical mode decomposition
PACS:
TP391.9
DOI:
-
Abstract:
A method of identity recognition using heart sound based on CPSO-LSSVM is proposed.Two kinds of spaces,population space and belief space,are set in the algorithm.With the approach,the heart sound signals were decomposed using the empirical mode decomposition(EMD)to get stable IMF components at first,aiming at the non-stable and non-linear of heart sounds.Then,the IMFs containing the information of the first and second heart sounds were selected and the corresponding HHT instantaneous spectrum were drawn by Hilbert transformation.Subsequently,energy character vectors of spectrum were taken as the input of LSSVM to establish the classifier.To improve the classification accuracy,LSSVM’s parameters λ and σ are optimized by GA,PSO and CPSO(λ=28.86=0.87).The experiment collects 120 heart sounds from 3 people to test the proposed algorithm.Compared with the GA and PSO,the CPSO has the advantages in the global search ability escaping from local optimum capacity,and convergence speed.The classification accuracy of the CPSO-LSSVM algorithm reached 97.7%,and result demonstrates that the method has an encouraging recognition performance and identity recognition using heart sound is feasible.

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Last Update: 2013-03-31