DocumentCode
62388
Title
Comparison of three scattering models for ultrasound blood characterization
Author
Franceschini, Emilie ; Saha, Ripon K. ; Cloutier, Guy
Author_Institution
Lab. de Mec. et d´Acoust. (LMA), Aix-Marseille Univ., Marseille, France
Volume
60
Issue
11
fYear
2013
fDate
Nov-13
Firstpage
2321
Lastpage
2334
Abstract
Ultrasonic backscattered signals from blood contain frequency-dependent information that can be used to obtain quantitative parameters reflecting the aggregation level of red blood cells (RBCs). The approach is based on estimating structural aggregate parameters by fitting the spectrum of the backscattered radio-frequency echoes from blood to an estimated spectrum considering a theoretical scattering model. In this study, three scattering models were examined: a new implementation of the Gaussian model (GM), the structure factor size estimator (SFSE), and the new effective medium theory combined with the structure factor model (EMTSFM). The accuracy of the three scattering models in determining mean aggregate size and compactness was compared by 2-D and 3-D computer simulations in which RBC structural parameters were controlled. Two clustering conditions were studied: 1) the aggregate size varied and the aggregate compactness was fixed in both 2-D and 3-D cases, and 2) the aggregate size was fixed and the aggregate compactness varied in the 2-D case. For both clustering conditions, the EMTSFM was found to be more suitable than GM and SFSE for characterizing RBC aggregation.
Keywords
Gaussian processes; aggregation; biomedical ultrasonics; blood; cellular biophysics; 2-D computer simulations; 3-D computer simulations; EMTSFM; GM; Gaussian model; RBC aggregation; RBC structural parameters; SFSE; aggregate size; aggregation level; backscattered radiofrequency echoes; effective medium theory-structure factor model; red blood cells; structural aggregate parameters; structure factor size estimator; theoretical scattering model; ultrasound backscattered signals; ultrasound blood characterization; Aggregates; Blood; Computational modeling; Impedance; Plasmas; Scattering; Solid modeling; Blood; Cluster Analysis; Computer Simulation; Erythrocyte Aggregation; Humans; Models, Theoretical; Signal Processing, Computer-Assisted; Ultrasonography;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2013.6644736
Filename
6644736
Link To Document