Title :
Distribution of aortic mechanical prosthetic valve closure sound model parameters on the surface of the chest
Author :
Baykal, Ahmet ; Ider, Y. Ziya ; Köymen, Hayrettin
Author_Institution :
Dept. of Electr. & Electron. Eng., Middle East Tech. Univ., Ankara, Turkey
fDate :
4/1/1995 12:00:00 AM
Abstract :
If has been previously proposed that heart valve closure sounds can be modeled by a sum of decaying sinusoids, based on the hypothesis that the heart cavity, heart walls, major vessels, and other structures in the chest constitute a frequency selective linear acoustic system and this system is excited by the rapidly decelerating valve occluder. In this study, the distribution of the parameters of this model for the second heart sound is investigated. For this purpose, heart sounds of 10 patients who have a St. Jude-type bileaflet mechanical heart valve prosthesis in the aortic position are recorded. Recordings are performed at 12 different locations on the surface of the chest. To reliably assign representative parameters to each recording site, signal averaging, model order selection, and a special filtration technique are employed. The results of the analyses are discussed in relation to the above hypothesis on the heart sound generation mechanism. It is observed that site-to-site variation of frequencies of modes does not exceed the accuracy limit of proposed analysis method, but energies of these modes vary on the surface of the chest, and as a result of statistical analysis, it appears that energy of some modes are significantly different between two recording sites.
Keywords :
bioacoustics; cardiology; physiological models; prosthetics; St. Jude-type bileaflet heart valve prosthesis; aortic mechanical prosthetic valve closure sound model parameters; chest surface; decaying sinusoids sum; frequency selective linear acoustic system; heart cavity; heart walls; major vessels; mode frequencies; model order selection; parameters distribution; rapidly decelerating valve occluder; representative parameters; second heart sound; site-to-site variation; Acoustical engineering; Cardiology; Cutoff frequency; Feature extraction; Filtration; Heart valves; Mathematical model; Pathology; Prosthetics; Statistical analysis; Adolescent; Adult; Algorithms; Aortic Valve; Female; Heart Sounds; Heart Valve Prosthesis; Humans; Linear Models; Male; Models, Cardiovascular; Phonocardiography; Reproducibility of Results; Signal Processing, Computer-Assisted;
Journal_Title :
Biomedical Engineering, IEEE Transactions on