DocumentCode
1002846
Title
A Two-Dimensional CVIB Imaging System with a Snake-Based Tracking Algorithm
Author
Bai, Jing ; Liu, Ke ; Ying, Kui ; Jiang, Yong ; Zhang, Pengfei ; Lau, Jaclyn
Author_Institution
Tsinghua Univ., Beijing
Volume
54
Issue
11
fYear
2007
Firstpage
2300
Lastpage
2308
Abstract
Quantitative ultrasound tissue characterization based on integrated backscatter (IB) has shown great potential in detecting myocardial ischemia. The magnitude of the cyclic variation in IB (CVIB) has recently been considered as one of the most promising parameters in assessing regional myocardial contractile performance. Our laboratory previously developed a novel ultrasonic fusion imaging method based on the CVIB. However, the major problem for clinical applications of this technique and other existing analytical methods based on IB is that the myocardial tissue can´t be traced effectively without the cardiologist´s intervention. In order to solve this problem, this paper presents a snake-based tracking algorithm to trace myocardial tissue automatically. A mathematical method is also introduced to extend the application of the snake model for detecting non-closed contours. The system developed in our previous research was redesigned to synchronize the radio frequency signal, the electrocardiographic signal, and the video signal, which allows verification of the system. Our results suggest that the system using the auto-tracking method increases the accuracy of detecting myocardial ischemia.
Keywords
biological tissues; biomedical ultrasonics; diseases; electrocardiography; medical image processing; video signal processing; CVIB imaging system; autotracking; cyclic variation; electrocardiographic signal; integrated backscatter; myocardial ischemia; myocardial tissue; nonclosed contour detection; radiofrequency signal; regional myocardial contractile performance; snake-based tracking algorithm; two-dimensional imaging; ultrasonic fusion imaging; ultrasound tissue characterization; video signal; Backscatter; Cardiology; Frequency synchronization; Ischemic pain; Laboratories; Mathematical model; Myocardium; RF signals; Radio frequency; Ultrasonic imaging; Algorithms; Animals; Artificial Intelligence; Dogs; Equipment Design; Equipment Failure Analysis; Heart Ventricles; Image Enhancement; Image Interpretation, Computer-Assisted; Myocardial Contraction; Pattern Recognition, Automated; Reproducibility of Results; Sensitivity and Specificity; Ultrasonography;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2007.534
Filename
4399704
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