DocumentCode :
3582667
Title :
Ultrasound strain imaging based on information theoretic delay estimation
Author :
Hossain Shuvo, Md Maruf ; Aowlad Hossain, A.B.M. ; Roy, Krishna Chandra
Author_Institution :
Dept. of Electron. & Commun. Eng., Khulna Univ. of Eng. & Technol., Khulna, Bangladesh
fYear :
2014
Firstpage :
401
Lastpage :
405
Abstract :
Ultrasound strain imaging has great importance as tumor or cancerous tissues are much stiffer than normal tissues. Estimations of strain calculating the time delays between consecutive ultrasound echo signals are common approaches in quasi-static elastography. Because of the ill posed nature of strain images, the ultrasound strain estimation still remains challenging. In this paper, we present an iterative strain estimator that uses mutual information between stochastic pre and post compressed radio frequency (RF) signals to define time delays. For each RF signal, a past and future is defined by cutting sample sequences into two parts. The time delay is considered to be the time shift between the cutting moments for which the mutual information between both past vectors and future vectors reaches a minimum. Displacement calculation with this time delay provides effective strain estimation for small strains. A synthetic phantom of tissue with tumor is modeled using the finite element method (FEM) and the pre-/post-compressed RF signals are generated using ultrasound simulation package Field II. Using these simulated RF data displacements and strain of deformation are calculated in MATLAB. The Contrast to Noise Ratio (CNR) and Signal to Noise Ratio (SNR) are found better compared to conventional cross-correlation method. This algorithm can detect inclusions having echogenicity very close to that of the surrounding tissues and hence can be useful for detection of tumors or cancers.
Keywords :
biomechanics; biomedical ultrasonics; cancer; deformation; delay estimation; finite element analysis; iterative methods; mathematics computing; medical signal processing; phantoms; signal denoising; stochastic processes; tumours; ultrasonic imaging; FEM; MATLAB; cancerous tissues; cancers; consecutive ultrasound echo signals; contrast-to-noise ratio; conventional cross-correlation method; cutting moments; deformation; displacement calculation; echogenicity; finite element method; information theoretic delay estimation; iterative strain estimator; normal tissues; quasistatic elastography; sample sequences; signal-to-noise ratio; simulated RF data displacements; stochastic post-compressed radiofrequency signals; stochastic precompressed radiofrequency signals; synthetic phantom; time delays; time shift; tumor; ultrasound simulation package Field II; ultrasound strain imaging; Delays; Estimation; Finite element analysis; Mutual information; Radio frequency; Strain; Ultrasonic imaging; FIELD II; linear ultrasound; mutual information; strain estimation; time delay;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer and Information Technology (ICCIT), 2014 17th International Conference on
Type :
conf
DOI :
10.1109/ICCITechn.2014.7073142
Filename :
7073142
Link To Document :
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